Progress of LiMnyFe1−yPO4 Cathode Materials: From Mechanisms, Defects, Modification Methods to Applications

Hui Li , Xinli Xiao , Jiliang Wu , Xianyong Wu , Rong Chen , Yuliang Cao , Xinping Ai , Zhongxue Chen

Carbon Neutralization ›› 2025, Vol. 4 ›› Issue (3) : e70009

PDF
Carbon Neutralization ›› 2025, Vol. 4 ›› Issue (3) :e70009 DOI: 10.1002/cnl2.70009
REVIEW
Progress of LiMnyFe1−yPO4 Cathode Materials: From Mechanisms, Defects, Modification Methods to Applications
Author information +
History +
PDF

Abstract

Cathode materials play a vital role in determining the electrochemical performance of a lithium-ion battery. They have a direct impact on the energy density, cycle life, rate performance, and safety of the battery. LiMnyFe1−yPO4 (0 < y < 1, LMFP) inherits the advantages of high safety and low cost of LiFePO4 (LFP) materials and also makes up for the shortcomings of the low energy density of LFP materials to a certain extent. It is considered to be a promising cathode material. However, LMFP exhibits extremely low ionic and electronic conductivity. Due to the Jahn–Teller effect, high Mn content will cause serious Mn dissolution and other problems, which seriously hinder the large-scale application of LMFP. This paper provides a comprehensive review of the structural characteristics, reaction mechanisms, and methods to enhance the electrical conductivity of LMFP cathode materials. It primarily focuses on the effects of particle size optimization, morphology control, surface coating, ion doping, and mixing with other layered cathode materials to improve the electrical conductivity of LMFP and their underlying mechanisms. These modification methods can improve the electron/ion transmission path between material particles and the conductivity of LMFP to a certain extent. However, these methods alone make it difficult to solve the problem of poor conductivity of LMFP cathode materials. To further improve the comprehensive electrochemical performance of LMFP materials, this paper provides a summary of the current research progress and presents future research ideas and development directions for LMFP. The strategy of combined modification by heteroatom-doped carbon material coating, short b-axis, morphology control, and ion doping is proposed, and the main development direction and research ideas of LMFP in the future are pointed out.

Keywords

cathode materials / LiMnyFe1 − yPO4 / lithium ion battery

Cite this article

Download citation ▾
Hui Li, Xinli Xiao, Jiliang Wu, Xianyong Wu, Rong Chen, Yuliang Cao, Xinping Ai, Zhongxue Chen. Progress of LiMnyFe1−yPO4 Cathode Materials: From Mechanisms, Defects, Modification Methods to Applications. Carbon Neutralization, 2025, 4(3): e70009 DOI:10.1002/cnl2.70009

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

T. H. Mengesha, J. Jeyakumar, Y. B. Hendri, et al., “Concerted Effect of Ion- and Electron-Conductive Additives on the Electrochemical and Thermal Performances of the LiNi0.8Co0.1Mn0.1O2 Cathode Material Synthesized by a Taylor-Flow Reactor for Lithium-Ion Batteries,” ACS Applied Materials & Interfaces 16 (2024): 21034.

[2]

S. Zhao, K. Yan, J. Zhang, B. Sun, and G. Wang, “Reaction Mechanisms of Layered Lithium-Rich Cathode Materials for High-Energy Lithium-Ion Batteries,” Angewandte Chemie International Edition 60 (2021): 2208.

[3]

H. Q. Pham, Y. H. Thi Tran, J. Han, and S.-W. Song, “Roles of Nonflammable Organic Liquid Electrolyte in Stabilizing the Interface of the LiNi0.8Co0.1Mn0.1O2 Cathode at 4.5 V and Improving the Battery Performance,” Journal of Physical Chemistry C 124 (2019): 175–185.

[4]

J. Yang, N. Guan, C. Xu, et al., “The Synthesis and Modification of LiFePO4 Lithium-ion Battery Cathodes: A Mini Review,” CrystEngComm 26 (2024): 3441–3454.

[5]

A. Nekahi, M. R. Ak, X. Li, S. Deng, and K. Zaghib, “Sustainable LiFePO4 and LiMnxFe1-xPO4 (x=0.1–1) Cathode Materials for Lithium-Ion Batteries: A Systematic Review From Mine to Chassis,” Materials Science and Engineering R: Reports 159 (2024): 100797.

[6]

P. Vanaphuti and A. Manthiram, “Enhancing the Mn Redox Kinetics of LiMn0.5Fe0.5PO4 Cathodes Through a Synergistic Co-Doping With Niobium and Magnesium for Lithium-Ion Batteries,” Small 20 (2024): e2404878.

[7]

J. Wang, J. Yang, Y. Tang, et al., “Size-Dependent Surface Phase Change of Lithium Iron Phosphate During Carbon Coating,” Nature Communications 5 (2014): 3415.

[8]

J. Wang, J. Yang, Y. Zhang, et al., “Interaction of Carbon Coating on LiFePO4: A Local Visualization Study of the Influence of Impurity Phases,” Advanced Functional Materials 23 (2013): 806–814.

[9]

X. Sun, Y. Zhou, D. Li, et al., “A Review of Electrospun Separators for Lithium-Based Batteries: Progress and Application Prospects,” Carbon Energy 6 (2024): e539.

[10]

Q. Ding, Z. Jiang, K. Chen, et al., “Superior Stable High-Voltage LiCoO2 Enabled by Modification With a Layer of Lithiated Polyvinylidene Fluoride-Derived LiF,” Carbon Energy 6 (2024): e602.

[11]

M. Han, Y. Mu, L. Wei, L. Zeng, and T. Zhao, “Multilevel Carbon Architecture of Subnanoscopic Silicon for Fast-Charging High-Energy-Density Lithium-Ion Batteries,” Carbon Energy 6 (2023): e377.

[12]

H. Hao, R. Tan, C. Ye, and C. T. J. Low, “Carbon-Coated Current Collectors in Lithium-Ion Batteries and Supercapacitors: Materials, Manufacture and Applications,” Carbon Energy 6 (2024): e604.

[13]

C. Peng, S. Liang, Y. Yu, et al., “A Chronicle of Titanium Niobium Oxide Materials for High-Performance Lithium-Ion Batteries: From Laboratory to Industry,” Carbon Neutralization 3 (2024): 1036–1091.

[14]

D. Wei, L. Zhang, Y. Wang, et al., “Recent Progress on Construction and Applications of Metal-Organic Frameworks-Based Materials for Lithium-Ion Batteries and Supercapacitors,” Carbon Neutralization 3 (2024): 396–414.

[15]

Z. Xu, K. Song, X. Chang, et al., “Layered Oxide Cathodes: A Comprehensive Review of Characteristics, Research, and Development in Lithium and Sodium Ion Batteries,” Carbon Neutralization 3 (2024): 832–856.

[16]

L. Zuo, D. Lu, T. Yang, et al., “Recent Achievements of Free-Standing Material and Interface Optimization in High-Energy-Density Flexible Lithium Batteries,” Carbon Neutralization 1 (2022): 316–345.

[17]

J. Ren, H. Zhu, Y. Fang, et al., “Typical Cathode Materials for Lithium-Ion and Sodium-Ion Batteries: From Structural Design to Performance Optimization,” Carbon Neutralization 2 (2023): 339–377.

[18]

S. Li, H. Zhang, Y. Liu, L. Wang, and X. He, “Comprehensive Understanding of Structure Transition in LiMnyFe1−yPO4 During Delithiation/Lithiation,” Advanced Functional Materials 34 (2023): 2310057.

[19]

K. Sun, S. H. Luo, N. Du, Y. Wei, and S. Yan, “Research Progress of Lithium Manganese Iron Phosphate Cathode Materials: From Preparation to Modification,” Electroanalysis 36 (2024): e202400120.

[20]

E. Xu, X. Sun, W. Lyv, et al., “Optimizing the Electrochemical Performance of Olivine LiMnxFe1–xPO4 Cathode Materials: Ongoing Progresses and Challenges,” Industrial & Engineering Chemistry Research 63 (2024): 9631–9660.

[21]

B. Zhang, X. Wang, S. Wang, et al., “High-Energy-Density Lithium Manganese Iron Phosphate for Lithium-Ion Batteries: Progresses, Challenges, and Prospects,” Journal of Energy Chemistry 100 (2025): 1–17.

[22]

X. Sun, Y. Zhou, D. Li, et al., “A Review of Electrospun Separators for Lithium-Based Batteries: Progress and Application Prospects,” Carbon Energy 6 (2024): e539.

[23]

Y. Quan, X. Cui, L. Hu, et al., “Enhancing Li+ Transportation at Graphite-Low Concentration Electrolyte Interface via Interphase Modulation of LiNO3 and Vinylene Carbonate,” Carbon Neutralization 4 (2024): e184.

[24]

S. Qin, Y. Cao, J. Zhang, et al., “Polymer Dispersed Ionic Liquid Electrolytes With High Ionic Conductivity for Ultrastable Solid-State Lithium Batteries,” Carbon Energy 5 (2023): e316.

[25]

B. Liu, J. Liu, C. Zhong, and W. Hu, “Mg-Doped, Carbon-Coated, and Prelithiated SiOx as Anode Materials With Improved Initial Coulombic Efficiency for lithium-Ion Batteries,” Carbon Energy 6 (2023): e421.

[26]

Z. Hao, L. Yan, W. Li, et al., “Interfacial Regulation Engineering in Anode-Free Rechargeable Batteries,” Carbon Neutralization 3 (2024): 629–646.

[27]

X. Fu, K. Chang, B. Li, H. Tang, E. Shangguan, and Z. Chang, “Low-Temperature Synthesis of LiMnPO4 /RGO Cathode Material With Excellent Voltage Platform and Cycle Performance,” Electrochimica Acta 225 (2017): 272–282.

[28]

C. Delacourt, L. Laffont, R. Bouchet, et al., “Toward Understanding of Electrical Limitations (Electronic, Ionic) in LiMPO4 (M = Fe, Mn) Electrode Materials,” Journal of the Electrochemical Society 152 (2005): A913–A921.

[29]

S.-M. Oh, S.-T. Myung, Y. S. Choi, K. H. Oh, and Y.-K. Sun, “Co-Precipitation Synthesis of Micro-Sized Spherical LiMn0.5Fe0.5PO4 Cathode Material for Lithium Batteries,” Journal of Materials Chemistry 21 (2011): 19368.

[30]

A. Yamada, Y. Takei, H. Koizumi, et al., “Electrochemical, Magnetic, and Structural Investigation of the Lix(MnyFe1–y)PO4 Olivine Phases,” Chemistry of Materials 18 (2006): 804–813.

[31]

K. Zhang, Z.-X. Li, X. Li, et al., “Perspective on Cycling Stability of Lithium-Iron Manganese Phosphate for Lithium-Ion Batteries,” Rare Metals 42 (2022): 740–750.

[32]

S. Nishimura, G. Kobayashi, K. Ohoyama, R. Kanno, M. Yashima, and A. Yamada, “Experimental Visualization of Lithium Diffusion In LixFePO4,” Nature Materials 7 (2008): 707–711.

[33]

K. M. Ø. Jensen, M. Christensen, H. P. Gunnlaugsson, et al., “Defects in Hydrothermally Synthesized LiFePO4 and LiFe1−xMnxPO4 Cathode Materials,” Chemistry of Materials 25 (2013): 2282–2290.

[34]

L. An, H. Liu, Y. Liu, Z. Li, X. Ren, and G. Liang, “The Best Addition of Graphene to LiMn0.7Fe0.3PO4/C Cathode Material Synthesized by Wet Ball Milling Combined With Spray Drying Method,” Journal of Alloys and Compounds 767 (2018): 315–322.

[35]

X. Cui, K. Tuo, H. Dong, et al., “Modification of Phosphorus-Doped Carbon Coating Enhances the Electrochemical Performance of LiFe0.8Mn0.2PO4 Cathode Material,” Journal of Alloys and Compounds 885 (2021): 160946.

[36]

W. Choi and A. Manthiram, “Comparison of Metal Ion Dissolutions From Lithium Ion Battery Cathodes,” Journal of the Electrochemical Society 153 (2006): A1760–A1764.

[37]

V. Aravindan, J. Gnanaraj, Y.-S. Lee, and S. Madhavi, “LiMnPO4—A Next Generation Cathode Material for Lithium-Ion Batteries,” Journal of Materials Chemistry A 1 (2013): 3518–3539.

[38]

Y. Xie, H. T. Yu, T. F. Yi, and Y. R. Zhu, “Understanding the Thermal and Mechanical Stabilities of Olivine-Type LiMPO4 (M = Fe, Mn) as Cathode Materials for Rechargeable Lithium Batteries From First Principles,” ACS Applied Materials & Interfaces 6 (2014): 4033–4042.

[39]

N. P. W. Pieczonka, Z. Liu, P. Lu, et al., “Understanding Transition-Metal Dissolution Behavior in LiNi0.5Mn1.5O4 High-Voltage Spinel for Lithium Ion Batteries,” The Journal of Physical Chemistry C 117 (2013): 15947–15957.

[40]

J. A. Gilbert, I. A. Shkrob, and D. P. Abraham, “Transition Metal Dissolution, Ion Migration, Electrocatalytic Reduction and Capacity Loss in Lithium-Ion Full Cells,” Journal of the Electrochemical Society 164 (2017): A389–A399.

[41]

K. Leslie, J. Harlow, D. Rathore, K. Tuul, and M. Metzger, “Correlating Mn Dissolution and Capacity Fade in LiMn0.8Fe0.2PO4/Graphite Cells During Cycling and Storage at Elevated Temperature,” Journal of the Electrochemical Society 171 (2024): 040520.

[42]

M. Yu, J. Li, and X. Ning, “Improving Electrochemical Performance of LiMn0.5Fe0.5PO4 Cathode by Hybrid Coating of Li3VO4 and Carbon,” Electrochimica Acta 368 (2021): 137597.

[43]

S. Wi, J. Park, S. Lee, et al., “Insights on the Delithiation/Lithiation Reactions of Li Mn0.8Fe0.2PO4 Mesocrystals in Li+ Batteries by In Situ Techniques,” Nano Energy 39 (2017): 371–379.

[44]

H. Xu, J. Zong, F. Ding, Z. Lu, W. Li, and X. Liu, “Effects of Fe2+ ion Doping on LiMnPO4 Nanomaterial for Lithium Ion Batteries,” RSC Advances 6 (2016): 27164–27169.

[45]

C. Luo, Y. Jiang, X. Zhang, C. Ouyang, X. Niu, and L. Wang, “Misfit Strains Inducing Voltage Decay in LiMnyFe1−yPO4/C,” Journal of Energy Chemistry 68 (2022): 206–212.

[46]

M. Jie, X. Han, T. Chen, Z. Guo, J. Li, and X. He, “First-Principles Investigations of Lithium Manganese Phosphate Cathode Materials: Advances and Prospects,” Energy Technology 12 (2024): 2400444.

[47]

Y. Deng, C. Yang, K. Zou, X. Qin, Z. Zhao, and G. Chen, “Recent Advances of Mn-Rich LiFe1-yMnyPO4 (0.5 ≤ y < 1.0) Cathode Materials for High Energy Density Lithium Ion Batteries,” Advanced Energy Materials 7 (2017): 1601958.

[48]

L. Yang, W. Deng, W. Xu, et al., “Olivine LiMnxFe1−xPO4 Cathode Materials for Lithium Ion Batteries: Restricted Factors of Rate Performances,” Journal of Materials Chemistry A 9 (2021): 14214–14232.

[49]

S. Liu, J. Zheng, B. Zhang, et al., “Engineering Manganese-Rich Phospho-Olivine Cathode Materials With Exposed Crystal {0 1 0} Facets for Practical Li-Ion Batteries,” Chemical Engineering Journal 454 (2023): 139986.

[50]

B. Zhang, X. Xie, Z. Peng, et al., “Synthesis of Flexible LiMn0.8Fe0.2PO4/C Microsphere and Its Synergetic Effects With Blended LiNi0.85Co0.10Al0.05O2 Electrodes,” Journal of Power Sources 541 (2022): 231671.

[51]

F. Jiang, K. Qu, M. Wang, et al., “Atomic Scale Insight Into the Fundamental Mechanism of Mn Doped LiFePO4,” Sustainable Energy & Fuels 4 (2020): 2741–2751.

[52]

J. Wu, H. Li, Y. Liu, Y. Ye, and Y. Yang, “Hepes-Assisted Co-Precipitation Synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ Content and Electrochemical Properties by pH Values,” Journal of the Electrochemical Society 168 (2021): 100544.

[53]

J. Wu, H. Li, Y. Liu, Y. Ye, and Y. Yang, “Doping and Coating Synergy to Improve the Rate Capability and Cycling Stability of Lithium-Rich Cathode Materials for Lithium-Ion Batteries,” The Journal of Physical Chemistry C 126 (2022): 2410–2423.

[54]

J. Wu, H. Li, Y. Liu, Y. Ye, and Y. Yang, “Facile Synthesis and Electrochemical Performance of Lithium-Rich Layered Oxides With Stable Hierarchical Structure Through HEPES-Assisted Co-Precipitation Method,” Electrochimica Acta 401 (2022): 139485.

[55]

J. Wu, H. Li, Y. Liu, Y. Ye, and Y. Yang, “In Situ Reconstruction of the Spinel Interface on a Li-Rich Layered Cathode Material With Enhanced Electrochemical Performances through HEPES and Heat Treatment Strategy,” ACS Sustainable Chemistry & Engineering 10 (2022): 6165–6180.

[56]

H. Li, H. Zhang, Y. Liang, R. Chen, and Y. Cao, “Modification of Lithium-Rich Manganese Oxide Materials: Coating, Doping and Single Crystallization,” Batteries Supercaps 8 (2024): e202400443.

[57]

Y. Gao, J. Li, Y. Hua, et al., “Recent Advances of Metal Fluoride Compounds Cathode Materials for Lithium Ion Batteries: A Review,” Materials Futures 3 (2024): 032101.

[58]

Z. Yang, X. Xiang, J. Yang, and Z.-Y. Zhao, “High-Entropy Oxides as Energy Materials: From Complexity to Rational Design,” Materials Futures 3 (2024): 042103.

[59]

S. Chen, Z. Wang, M. Zhang, et al., “Practical Evaluation of Prelithiation Strategies for Next-Generation Lithium-Ion Batteries,” Carbon Energy 5 (2023): e323.

[60]

Z. Xu, Y. Yuan, Q. Tang, et al., “Facile Construction of a Multilayered Interface for a Durable Lithium-Rich Cathode,” Carbon Energy 5 (2023): e332.

[61]

M. Yoncheva, V. Koleva, M. Mladenov, et al., “Carbon-Coated Nano-Sized Fe1−xMnxPO4 Li Solid Solutions (0 ≤ x ≤ 1) Obtained f–A967rom Phosphate–Formate Precursors,” Journal of Materials Science 46 (2011): 7082–7089.

[62]

Y. Zhong, Z. Wu, J. Li, et al., “Synthesis of Core–Shell Structured LiFe0.5Mn0.3Co0.2PO4@C With Remarkable Electrochemical Performance as the Cathode of a Lithium-Ion Battery,” ChemElectroChem 2 (2015): 896–902.

[63]

I. Bezza, M. Kaus, R. Heinzmann, et al., “Mechanism of the Delithiation/Lithiation Process in LiFe0.4Mn0.6PO4: in Situ and Ex Situ Investigations on Long-Range and Local Structures,” Journal of Physical Chemistry C 119 (2015): 9016–9024.

[64]

K. Wang, T. Shen, D. Chen, and W. Wang, “Density Functional Theory and Electrochemistry Studies on LiFexMn1−xPO4 Solid Solutions,” Chinese Journal of Chemical Physics 32 (2019): 687–692.

[65]

A. Yamada and S.-C. Chung, “Crystal Chemistry of the Olivine-Type LiMnyFe1−yPO4 and MnFe1−yPO4 as Possible 4 V Cathode Materials for Lithium Batteries,” Journal of the Electrochemical Society 148 (2001): A960.

[66]

E. Lyle, R. Vaeli, A. Dutta, and M. Metzger, “Melt Synthesis of Lithium Manganese Iron Phosphate: Part I. Composition, Physical Properties, Structural Analysis, and Charge/Discharge Cycling,” Journal of the Electrochemical Society 169 (2022): 060526.

[67]

E. Lyle, R. Vaeli, M. Cormier, and M. Metzger, “Melt Synthesis of Lithium Manganese Iron Phosphate: Part II. Particle Size, Electrochemical Performance, and Solid-State Lithium Diffusion,” Journal of the Electrochemical Society 169 (2022): 060527.

[68]

S. Loftager, S. B. Schougaard, T. Vegge, and J. M. García-Lastra, “Density Functional Theory Study of Redox Potential Shifts in LixMnyFe1–yPO4 Battery Electrodes,” The Journal of Physical Chemistry C 123 (2018): 102–109.

[69]

Y. Liu, Y. Gu, H. Zeng, J. Zheng, and F. Pan, “Role of Superexchange Interactions on the Arrangement of Fe and Mn in LiMnxFe1–xPO4,” The Journal of Physical Chemistry C 123 (2019): 17002–17009.

[70]

A. Yamada, Y. Kudo, and K.-Y. Liu, “Phase Diagram of Lix(MnyFe1−y)PO4 (0⩽x , y⩽1),” Journal of the Electrochemical Society 148 (2001): A1153–A1159.

[71]

C. Delmas, M. Maccario, L. Croguennec, F. Le Cras, and F. Weill, “Lithium Deintercalation In LiFePO4 Nanoparticles via a Domino-Cascade Model,” Nature Materials 7 (2008): 665–671.

[72]

R. Malik, F. Zhou, and G. Ceder, “Phase Diagram and Electrochemical Properties of Mixed Olivines From First-Principles Calculations,” Physical Review B 79 (2009): 214201.

[73]

S. Wi, J. Park, S. Lee, et al., “Synchrotron-Based X-Ray Absorption Spectroscopy for the Electronic Structure of LixMn0.8Fe0.2PO4 Mesocrystal in Li+ Batteries,” Nano Energy 31 (2017): 495–503.

[74]

M. Kope¢, A. Yamada, G. Kobayashi, et al., “Structural and Magnetic Properties of Lix(MnyFe1−y)PO4 Electrode Materials for Li-Ion Batteries,” Journal of Power Sources 189 (2009): 1154–1163.

[75]

S. K. Martha, J. Grinblat, O. Haik, et al., “LiMn0.8Fe0.2PO4: An Advanced Cathode Material for Rechargeable Lithium Batteries,” Angewandte Chemie International Edition 48 (2009): 8559–8563.

[76]

S. Li, X. Meng, Q. Yi, et al., “Structural and Electrochemical Properties of LiMn0.6Fe0.4PO4 as a Cathode Material for Flexible Lithium-Ion Batteries and Self-Charging Power Pack,” Nano Energy 52 (2018): 510–516.

[77]

K. Du, L.-H. Zhang, Y.-B. Cao, Z.-D. Peng, and G.-R. Hu, “Synthesis of LiMn0.8Fe0.2PO4/C by Co-Precipitation Method and its Electrochemical Performances as a Cathode Material for Lithium-Ion Batteries,” Materials Chemistry and Physics 136 (2012): 925–929.

[78]

L. Liu, Z. Cao, Y. Cui, et al., “Nanocomposites LiMnxFe1−xPO4/C Synthesized Via Freeze Drying Assisted Sol-Gel Routine and Their Magnetic and Electrochemical Properties,” Journal of Alloys and Compounds 779 (2019): 339–346.

[79]

E. Xu, T. Wang, J. Chen, et al., “Stress-Induced Anomalous Lithiation Plateau of LiFeyMn1−yPO4 Over High-Rate Discharging,” Advanced Energy Materials 15 (2024): 2404929.

[80]

L. Chang, X. Bi, S. Luo, et al., “Investigation on Structural and Electrochemical Properties of Olivine-Structured LiMn1−xFexPO4/C Cathode Materials Based on First-Principles Calculation,” Journal of the Electrochemical Society 169 (2022): 010508.

[81]

R. Yang, L. Chang, S. Luo, et al., “A Critical Revelation of Lithium Ferromanganese Phosphate (LMFP) Performance in a Mn-Rich Cathode for Li-Ion Batteries Using Fe Equivalents to Occupy a Mn Site,” Journal of Materials Chemistry C 12 (2024): 4961–4976.

[82]

J. Yang, C. Li, T. Guang, et al., “Zero Lithium Miscibility Gap Enables High-Rate Equimolar Li(Mn,Fe)PO4 Solid Solution,” Nano Letters 21 (2021): 5091–5097.

[83]

J. Yang and J. S. Tse, “Li Ion Diffusion Mechanisms in LiFePO4: An Ab Initio Molecular Dynamics Study,” The Journal of Physical Chemistry A 115 (2011): 13045–13049.

[84]

C. A. J. Fisher, V. M. Hart Prieto, and M. S. Islam, “Lithium Battery Materials LiMPO4 (M = Mn, Fe, Co, and Ni): Insights Into Defect Association, Transport Mechanisms, and Doping Behavior,” Chemistry of Materials 20 (2008): 5907–5915.

[85]

G. R. Gardiner and M. S. Islam, “Anti-Site Defects and Ion Migration in the LiFe0.5Mn0.5PO4 Mixed-Metal Cathode Material,” Chemistry of Materials 22 (2010): 1242–1248.

[86]

Z. Deng, Q. Wang, D. Peng, H. Liu, and Y. Chen, “Fast Precipitation-Induced LiFe0.5Mn0.5PO4/C Nanorods With a Fine Size and Large Exposure of the (010) Faces for High-Performance Lithium-Ion Batteries,” Journal of Alloys and Compounds 794 (2019): 178–185.

[87]

P. Zuo, G. Cheng, L. Wang, et al., “Ascorbic Acid-Assisted Solvothermal Synthesis of LiMn0.9Fe0.1PO4/C Nanoplatelets With Enhanced Electrochemical Performance for Lithium Ion Batteries,” Journal of Power Sources 243 (2013): 872–879.

[88]

H. Wang, Y. Yang, Y. Liang, et al., “LiMn1−xFexPO4 Nanorods Grown on Graphene Sheets for Ultrahigh-Rate-Performance Lithium Ion Batteries,” Angewandte Chemie International Edition 50 (2011): 7364–7368.

[89]

B. Zhang, W. Meng, Y. Gong, et al., “[001]-Oriented LiMn0.6Fe0.4PO4/C Nanorod Microspheres Contributing High-Rate Performance to Olivine-Structured Cathode for Lithium-Ion Battery,” Materials Today Energy 30 (2022): 101162.

[90]

K. Wu, S. Yin, S. Wang, J. Zhu, and W. Yao, “Construction of Submicron-Sized LiFe0.4Mn0.6PO4/C Enwrapped Into Graphene Framework for Advanced Li-Storage,” Carbon 169 (2020): 55–64.

[91]

L. Guo, L. Ren, L. Wan, and J. Li, “Heterogeneous Carbon/N-Doped Reduced Graphene Oxide Wrapping LiMn0.8Fe0.2PO4 Composite for Higher Performance of Lithium Ion Batteries,” Applied Surface Science 476 (2019): 513–520.

[92]

J. Li, M. Xiang, Y. Wang, J. Wu, H. Zhao, and H. Liu, “Effects of Adhesives on the Electrochemical Performance of Monodisperse LiMn0.8Fe0.2PO4/C Microspheres as Cathode Materials for High Power Lithium-Ion Batteries,” Journal of Materials Chemistry A 5 (2017): 7952–7960.

[93]

X. Xie, B. Zhang, G. Hu, et al., “A New Route for Green Synthesis of LiFe0.25Mn0.75PO4/C@rGO Material for Lithium Ion Batteries,” Journal of Alloys and Compounds 853 (2021): 157106.

[94]

L. Liu, G. Chen, B. Du, et al., “Nano-Sized Cathode Material LiMn0.5Fe0.5PO4/C Synthesized via Improved Sol-Gel Routine and Its Magnetic and Electrochemical Properties,” Electrochimica Acta 255 (2017): 205–211.

[95]

Y. Guo, Y. Yao, C. Guo, et al., “Atomistic Observation and Transient Reordering of Antisite Li/Fe Defects Toward Sustainable LiFePO4,” Energy & Environmental Science 17 (2024): 7749–7761.

[96]

N. Ohmer, B. Fenk, D. Samuelis, et al., “Phase Evolution in Single-Crystalline LiFePO4 Followed by In Situ Scanning X-Ray Microscopy of a Micrometre-Sized Battery,” Nature Communications 6 (2015): 6045.

[97]

K. Jensen, M. Christensen, C. Tyrsted, and B. Brummerstedt Iversen, “Real-Time Synchrotron Powder X-Ray Diffraction Study of the Antisite Defect Formation During Sub- and Supercritical Synthesis of LiFePO4 and LiFe1−xMnxPO4 Nanoparticles,” Journal of Applied Crystallography 44 (2011): 287–294.

[98]

M. S. Islam, D. J. Driscoll, C. A. J. Fisher, and P. R. Slater, “Atomic-Scale Investigation of Defects, Dopants, and Lithium Transport in the LiFePO4 Olivine-Type Battery Material,” Chemistry of Materials 17 (2005): 5085–5092.

[99]

K. Sun, S. Luo, G. Wang, et al., “Fine Structure and Electrochemical Performance Investigations of Spherical LiMn0.6Fe0.4PO4/C Cathode Material Synthesized via a Spray-Drying Route at Various Calcination Temperatures,” Langmuir 40 (2024): 16571–16581.

[100]

F. Ye, L. Wang, X. He, et al., “Solvothermal Synthesis of Nano LiMn0.9Fe0.1PO4: Reaction Mechanism and Electrochemical Properties,” Journal of Power Sources 253 (2014): 143–149.

[101]

J. Hu, Y. Xiao, H. Tang, et al., “Tuning Li-Ion Diffusion in α-LiMn1–xFexPO4 Nanocrystals by Antisite Defects and Embedded β-Phase for Advanced Li-Ion Batteries,” Nano Letters 17 (2017): 4934–4940.

[102]

B. Hu and G. Tao, “Molecular Dynamics Simulations on Lithium Diffusion In LiFePO4: The Effect of Anti-Site Defects,” Journal of Materials Chemistry A 3 (2015): 20399–20407.

[103]

M. S. Whittingham, “Ultimate Limits to Intercalation Reactions for Lithium Batteries,” Chemical Reviews 114 (2014): 11414–11443.

[104]

J. Luo, J. Zhang, Z. Guo, et al., “Coupling Antisite Defect and Lattice Tensile Stimulates Facile Isotropic Li-Ion Diffusion,” Advanced Materials 36 (2024): e2405956.

[105]

L. Wang, F. Zhou, Y. S. Meng, and G. Ceder, “First-Principles Study of Surface Properties of LiFePO4: Surface Energy, Structure, Wulff Shape, and Surface Redox Potential,” Physical Review B 76 (2007): 165435.

[106]

A. Eftekhari, “LiFePO4/C Nanocomposites for Lithium-Ion Batteries,” Journal of Power Sources 343 (2017): 395–411.

[107]

K. Zhong, Q. Yang, Y. Tong, W. Zhang, X. Cai, and M. Wang, “Theoretical Studies of the Dissociation of Mn Atoms on Different Crystal Surfaces of LiMn0.5Fe0.5PO4,” Chemical Physics 575 (2023): 112083.

[108]

X. Yan, D. Sun, Y. Wang, et al., “Enhanced Electrochemical Performance of LiMn0.75Fe0.25PO4 Nanoplates From Multiple Interface Modification by Using Fluorine-Doped Carbon Coating,” ACS Sustainable Chemistry & Engineering 5 (2017): 4637–4644.

[109]

D. Choi, D. Wang, I.-T. Bae, et al., “LiMnPO4 Nanoplate Grown via Solid-State Reaction in Molten Hydrocarbon for Li-Ion Battery Cathode,” Nano Letters 10 (2010): 2799–2805.

[110]

L. Peng, X. Zhang, Z. Fang, et al., “General Facet-Controlled Synthesis of Single-Crystalline {010}-Oriented LiMPO4 (M = Mn, Fe, Co) Nanosheets,” Chemistry of Materials 29 (2017): 10526–10533.

[111]

H.-C. Dinh, S. Mho, I.-H. Yeo, Y. Kang, and D.-W. Kim, “Superior High Rate Capability of Size-Controlled LiMnPO4/C Nanosheets With Preferential Orientation,” RSC Advances 5 (2015): 100709–100714.

[112]

K. Park, J. Kim, S. Wi, et al., “Optimum Morphology of Mixed-Olivine Mesocrystals for a Li-Ion Battery,” Inorganic Chemistry 57 (2018): 5999–6009.

[113]

G. Assat and A. Manthiram, “Rapid Microwave-Assisted Solvothermal Synthesis of Non-Olivine cmcm Polymorphs of LiMPO4 (M = Mn, Fe, Co, and Ni) at Low Temperature and Pressure,” Inorganic Chemistry 54 (2015): 10015–10022.

[114]

T. Ruan, B. Wang, F. Wang, et al., “Stabilizing the Structure of LiMn0.5Fe0.5PO4 via the Formation of Concentration-Gradient Hollow Spheres With Fe-Rich Surfaces,” Nanoscale 11 (2019): 3933–3944.

[115]

V. G. Koleva, T. J. Boyadzhieva, and R. K. Stoyanova, “Crystal and Morphology Design of Dittmarite-Type Ammonium Iron–Manganese Phosphates, NH4Mn1–xFexPO4·H2O, as Precursors for Phospho-olivine Electrodes,” Crystal Growth & Design 19 (2019): 3744–3754.

[116]

Y. Liu, J. Gu, J. Zhang, et al., “LiFePO4 Nanoparticles Growth With Preferential (010) Face Modulated by Tween-80,” RSC Advances 5 (2015): 9745–9751.

[117]

Y. Wang, H. Yang, C.-Y. Wu, and J.-G. Duh, “Facile and Controllable One-Pot Synthesis of Nickel-Doped LiMn0.8Fe0.2PO4 Nanosheets as High Performance Cathode Materials for Lithium-Ion Batteries,” Journal of Materials Chemistry A 5 (2017): 18674–18683.

[118]

Y. Li, T. Zhou, S. Xiong, and D. Huang, “Boosting Manganese-Based Phosphate Cathode Performance via Fe or Ni Solid Solution for Lithium-Ion Battery: A First-Principles and Experiment Study,” Energy & Fuels 37 (2023): 19304–19319.

[119]

H. Li, Y. Luo, S.-Z. Yang, et al., “Synergistic Intermolecular Hydrogen-Bonded Cross-Linking and Steric Hindrance Effects Enabling Pomegranate-Type LMFP@C for Li+ Storage,” Rare Metals 44 (2024): 147–157.

[120]

Z. Guo and Z. Chen, “Microwave-Assisted Solvothermal Synthesis and Performances of LiMn0.7Fe0.3PO4 Nanoplates,” Materials and Manufacturing Processes 33 (2017): 813–816.

[121]

S. Wi, J. Kim, S. Lee, et al., “Synthesis of LiMn0.8Fe0.2PO4 Mesocrystals for High-Performance Li-Ion Cathode Materials,” Electrochimica Acta 216 (2016): 203–210.

[122]

T. Zeng, D.-H. Liu, C. Fan, et al., “LiMn0.8Fe0.2PO4@C Cathode Prepared via a Novel Hydrated MnHPO4 Intermediate for High Performance Lithium-Ion Batteries,” Inorganic Chemistry Frontiers 10 (2023): 1164–1175.

[123]

X. Liu, L. Wen, and Z. Guan, “Enhanced Electrochemical Performance of the LiMn0.6Fe0.4PO4/C Modified by Secondary Particle Morphology Control Combined With Primary Particle Size Control,” Ionics 30 (2024): 5197–5204.

[124]

J. Lee, S. J. Pennycook, and S. T. Pantelides, “Simultaneous Enhancement of Electronic and Li+ Ion Conductivity in LiFePO4,” Applied Physics Letters 101 (2012): 033901.

[125]

J. Yu, K. M. Rosso, and J. Liu, “Charge Localization and Transport in Lithiated Olivine Phosphate Materials,” The Journal of Physical Chemistry C 115 (2011): 25001–25006.

[126]

J. Liu, X. Liu, T. Huang, and A. Yu, “Synthesis of Nano-Sized LiMnPO4 and In Situ Carbon Coating Using a Solvothermal Method,” Journal of Power Sources 229 (2013): 203–209.

[127]

Y. Asari, Y. Suwa, and T. Hamada, “Formation and Diffusion of Vacancy-Polaron Complex In Olivine-Type LiMnPO4 and LiFePO4,” Physical Review B 84 (2011): 134113.

[128]

Y. Mishima, T. Hojo, T. Nishio, et al., “MEM Charge Density Study of Olivine LiMPO4 and MPO4 (M = Mn, Fe) as Cathode Materials for Lithium-Ion Batteries,” The Journal of Physical Chemistry C 117 (2013): 2608–2615.

[129]

H. Yu, E. Zhang, J. Yu, et al., “Relaxing the Jahn–Teller Distortion of LiMn0.6Fe0.4PO4cathodesviaMg/Ni Dual-Doping for High-Rate and Long-Life Li-Ion Batteries,” Journal of Materials Chemistry A 12 (2024): 26076–26082.

[130]

Q. Hu, L. Wang, G. Han, et al., “Revealing the Voltage Decay of LiMn0.7Fe0.3PO4 Cathodes Over Cycling,” Nano Energy 123 (2024): 109422.

[131]

S. M. Oh, S. T. Myung, J. B. Park, B. Scrosati, K. Amine, and Y. K. Sun, “Double-Structured LiMn0.85Fe0.15PO4 Coordinated With LiFePO4 for Rechargeable Lithium Batteries,” Angewandte Chemie International Edition 51 (2012): 1853–1856.

[132]

Y. Wang, R. Li, B. Feng, et al., “Enabling Fast Charging and All-Climate Mn-Containing Olivine Cathode via Constructing Hierarchically Porous Bulk Architecture,” Journal of Power Sources 614 (2024): 234996.

[133]

Y. Liu, X. Wen, T. Huang, and A. Yu, “Electrochemically Induced Interface by LiBOB to Enhance Cycling Performance of LiFe0.4Mn0.6PO4 Cathode for Lithium-Ion Batteries,” Journal of Power Sources 623 (2024): 235398.

[134]

L. Quan, Q. Su, H. Wu, et al., “All-Climate Outstanding-Performances Lithium-Ion Batteries Enabled by In-Situ Constructed Gel Polymer Electrolytes,” Chemical Engineering Journal 454 (2023): 140086.

[135]

Y. Liu, Y. Sun, X. Wen, T. Huang, and A. Yu, “Li2ZrO3 Coated LiFe0.4Mn0.6PO4/C With Enhanced Cycling Performance at Elevated Temperature for Lithium-Ion Batteries,” Journal of Power Sources 613 (2024): 234938.

[136]

L. Yang, Y. Xia, L. Qin, et al., “Concentration-Gradient LiMn0.8Fe0.2PO4 Cathode Material for High Performance Lithium Ion Battery,” Journal of Power Sources 304 (2016): 293–300.

[137]

A. Paolella, G. Bertoni, E. Dilena, et al., “Redox Centers Evolution in Phospho-Olivine Type (LiFe0.5Mn0.5PO4) Nanoplatelets With Uniform Cation Distribution,” Nano Letters 14 (2014): 1477–1483.

[138]

S. Pleuksachat, P. Krabao, S. Pongha, et al., “Dynamic Phase Transition Behavior of a LiMn0.5Fe0.5PO4 Olivine Cathode Material for Lithium-Ion Batteries Revealed Through In-Situ X-Ray Techniques,” Journal of Energy Chemistry 71 (2022): 452–459.

[139]

A. S. Andersson and J. O. Thomas, “The Source of First-Cycle Capacity Loss in LiFePO4,” Journal of Power Sources 97–98 (2001): 498–502.

[140]

T. J. Diethrich, S. Gnewuch, K. G. Dold, K. M. Taddei, and E. E. Rodriguez, “Tuning Magnetic Symmetry and Properties in the Olivine Series Li1–xFexMn1–xPO4 through Selective Delithiation,” Chemistry of Materials 34 (2022): 5039–5053.

[141]

N. D. Trinh, Z. W. Ai, G. Liang, and S. B. Schougaard, “Structural Changes in Electrochemically Cycled LiMn0.7Fe0.3PO4,” Solid State Ionics 324 (2018): 33–39.

[142]

D. B. Ravnsbæk, K. Xiang, W. Xing, et al., “Extended Solid Solutions and Coherent Transformations in Nanoscale Olivine Cathodes,” Nano Letters 14 (2014): 1484–1491.

[143]

D. B. Ravnsbæk, K. Xiang, W. Xing, et al., “Engineering the Transformation Strain in LiMnyFe1–yPO4 Olivines for Ultrahigh Rate Battery Cathodes,” Nano Letters 16 (2016): 2375–2380.

[144]

N. N. Bramnik, K. G. Bramnik, K. Nikolowski, M. Hinterstein, C. Baehtz, and H. Ehrenberg, “Synchrotron Diffraction Study of Lithium Extraction From LiMn0.6Fe0.4PO4,” Electrochemical and Solid-State Letters 8 (2005): A379.

[145]

K.-W. Nam, W.-S. Yoon, K. Zaghib, K. Yoon Chung, and X.-Q. Yang. “The Phase Transition Behaviors of Li1−xMn0.5Fe0.5PO4 During Lithium Extraction Studied by In Situ X-Ray Absorption and Diffraction Techniques,” Electrochemistry Communications 11 (2009): 2023–2026.

[146]

M. R. Roberts, G. Vitins, G. Denuault, and J. R. Owen, “High Throughput Electrochemical Observation of Structural Phase Changes in LiFe1−xMnxPO4 During Charge and Discharge,” Journal of the Electrochemical Society 157 (2010): A381–A386.

[147]

A. M. Hashambhoy and J. F. Whitacre, “Li Diffusivity and Phase Change in LiFe0.5Mn0.5PO4: A Comparative Study Using Galvanostatic Intermittent Titrationand Cyclic Voltammetry,” Journal of the Electrochemical Society 158 (2011): A390–A395.

[148]

S. Li, J. Wang, Y. Liu, et al., “New Mechanisms of Phase Transition in Olivine-Type LixMn0.7Fe0.3PO4 Cathodes: A Finding on Relaxation Behavior and its Implications for Battery Performance,” Advanced Functional Materials 34 (2024): 2420514.

[149]

Y. K. Hou, G. L. Pan, Y. Y. Sun, and X. P. Gao, “LiMn0.8Fe0.2PO4/Carbon Nanospheres@Graphene Nanoribbons Prepared by the Biomineralization Process As the Cathode for Lithium-Ion Batteries,” ACS Applied Materials & Interfaces 10 (2018): 16500–16510.

[150]

Z. Chen, W. Wang, J. Duan, et al., “Highly Efficient Synthesis of Nano LiMn0.90Fe0.10PO4/C Composite via Mechanochemical Activation Assisted Calcination,” Ceramics International 49 (2023): 18483–18490.

[151]

H. Zhang, Z. Wei, J. Jiang, et al., “Three Dimensional Nano-LiMn0.6Fe0.4PO4 @C/CNT as Cathode Materials for High-Rate Lithium-Ion Batteries,” Journal of Energy Chemistry 27 (2018): 544–551.

[152]

J. Liu, W. Liao, and A. Yu, “Electrochemical Performance and Stability of LiMn0.6Fe0.4PO4/C Composite,” Journal of Alloys and Compounds 587 (2014): 133–137.

[153]

J. Kim, H. Kim, S.-T. Myung, J.-K. Yoo, and S. Lee, “Exceptional Effect of Glassy Lithium Fluorophosphate on Mn-Rich Olivine Cathode Material for High-Performance Li Ion Batteries,” Journal of Power Sources 374 (2018): 55–60.

[154]

B. Ding, P. Xiao, G. Ji, Y. Ma, L. Lu, and J. Y. Lee, “High-Performance Lithium-Ion Cathode LiMn0.7Fe0.3PO4/C and the Mechanism of Performance Enhancements through Fe Substitution,” ACS Applied Materials & Interfaces 5 (2013): 12120–12126.

[155]

M.-S. Kim, J.-P. Jegal, K. C. Roh, and K.-B. Kim, “Synthesis of LiMn0.75Fe0.25PO4/C Microspheres Using a Microwave-Assisted Process With a Complexing Agent for High-Rate Lithium Ion Batteries,” Journal of Materials Chemistry A: Materials for Energy and Sustainability 2 (2014): 10607–10613.

[156]

W. Yang, Y. Bi, Y. Qin, et al., “LiMn0.8Fe0.2PO4/C Cathode Material Synthesized via Co-Precipitation Method With Superior High-Rate and Low-Temperature Performances for Lithium-Ion Batteries,” Journal of Power Sources 275 (2015): 785–791.

[157]

Y. Song, Y. Liu, and X. Ou, “Heat-Rate-Controlled Hydrothermal Crystallization of High-Performance LiMn0.7Fe0.3PO4 Cathode Material for Lithium-Ion Batteries,” Ceramics International 46 (2020): 5069–5076.

[158]

Y. Du, F. Liang, J. Lu, et al., “Influence of Sintering Temperature on the Morphology and Cycle Performance of Nanoscale Porous Materials LiFe0.75Mn0.25PO4/C,” Journal of Energy Storage 19 (2018): 226–231.

[159]

L. Wang, H. Zhang, Y. Li, and Y. Yao, “Improving the Rate Performance of LiMn0.5Fe0.5PO4/C Materials by the Precursor Method,” Journal of Materials Research and Technology 20 (2022): 4018–4025.

[160]

Z.-H. Wang, L.-X. Yuan, W.-X. Zhang, and Y.-H. Huang, “LiFe0.8Mn0.2PO4/C Cathode Material With High Energy Density for Lithium-Ion Batteries,” Journal of Alloys and Compounds 532 (2012): 25–30.

[161]

Y. Wang, G. Hu, Y. Cao, et al., “Highly Atom-Economical and Environmentally Friendly Synthesis of LiMn0.8Fe0.2PO4/rGO/C Cathode Material for Lithium-Ion Batteries,” Electrochimica Acta 354 (2020): 136743.

[162]

G. Du, X. Guo, W. Yang, et al., “Additives to Disturb LiMn0.8Fe0.2PO4 Growth and Their Influence on Performance,” Journal of Nanoparticle Research 17 (2015): 272.

[163]

Y. Xiong, Y. Wei, W. Rong, et al., “Preparation and Electrochemical Properties of Carbon-Coated LiMn0.6Fe0.4PO4Cathode Material for Lithium-Ion Batteries,” ECS Journal of Solid State Science and Technology 11 (2022): 113001.

[164]

Z. Tan, X. Wang, and H. Zhou, “Highly Energy Density Olivine Cathode Material Synthesized by Coprecipitation Technique,” Electrochimica Acta 90 (2013): 597–603.

[165]

E. B. Fredj, S. Rousselot, L. Danis, et al., “Synthesis and Characterization of LiFe1−xMnxPO4 (x = 0.25, 0.50, 0.75) Lithium Ion Battery Cathode Synthesized Via a Melting Process,” Journal of Energy Storage 27 (2020): 101116.

[166]

W. Xiang, Y. J. Zhong, J. Y. Ji, et al., “Hydrothermal Synthesis, Evolution, and Electrochemical Performance of LiMn0.5Fe0.5PO4 Nanostructures,” Physical Chemistry Chemical Physics 17 (2015): 18629–18637.

[167]

H. Shen, W. Xiang, X. Shi, B. Zhong, and H. Liu, “Hierarchical LiMn0.5Fe0.5PO4/C Nanorods With Excellent Electrochemical Performance Synthesized by Rheological Phase Method as Cathode for Lithium Ion Battery,” Ionics 22 (2015): 193–200.

[168]

J. Xiong, Y. Wang, Y. Wang, and J. Zhang, “PVP-Assisted Solvothermal Synthesis of LiMn0.8Fe0.2PO4/C Nanorods as Cathode Material for Lithium Ion Batteries,” Ceramics International 42 (2016): 9018.

[169]

Z. Lei, J. Wang, J. Yang, Y. Nuli, and Z. Ma, “Nano-/Microhierarchical-Structured LiMn0.85Fe0.15PO4 Cathode Material for Advanced Lithium Ion Battery,” ACS Applied Materials & Interfaces 10 (2018): 43552–43560.

[170]

B. Wu and W. Gao, “LiMn0.7Fe0.3PO4 Nanorods Grown on Graphene Sheets Synthesized In Situ by Modified Microwave-Assisted Solvothermal Method as High-Performance Cathode Materials,” Journal of Materials Science 53 (2017): 4433–4443.

[171]

K. Saravanan, V. Ramar, P. Balaya, and J. J. Vittal, “Li(MnxFe1−x)PO4/C (x = 0.5, 0.75 and 1) Nanoplates for Lithium Storage Application,” Journal of Materials Chemistry 21 (2011): 14925.

[172]

J. Li, Y. Wang, J. Wu, H. Zhao, and H. Liu, “CNT-Embedded LiMn0.8Fe0.2PO4/C Microsphere Cathode With High Rate Capability and Cycling Stability for Lithium Ion Batteries,” Journal of Alloys and Compounds 731 (2018): 864–872.

[173]

L. Yang, Y. Wang, J. Wu, et al., “Facile Synthesis of Micro-Spherical LiMn0.7Fe0.3PO4/C Cathodes With Advanced Cycle Life and Rate Performance for Lithium-Ion Battery,” Ceramics International 43 (2017): 4821–4830.

[174]

L. An, Z. Li, X. Ren, L. Wang, and G. Liang, “Low-Cost Synthesis of LiMn0.7Fe0.3PO4/C Cathode Materials With Fe2O3 and Mn3O4 via Two-Step Solid-State Reaction for Lithium-Ion Battery,” Ionics 25 (2019): 2997–3007.

[175]

W. L. Shang, L. Y. Kong, L. Z. Chen, S. Z. Huang, Y. Tang, and C. Ren, “Preparation and Electrochemical Performance of LiMn0.6Fe0.4PO4/C With High Energy Density,” Chinese Journal of Inorganic Chemistry 35 (2019): 485–492.

[176]

L. Yang, W. Chang, C. Xie, J. Jin, Y. Xia, and X. Yuan, “Rational Design of the Micron-Sized Particle Size of LiMn0.8Fe0.2PO4 Cathode Material With Enhanced Electrochemical Performance for Li-Ion Batteries,” Materials Research Express 7 (2020): 015527.

[177]

B. Ding, G. Ji, Y. Ma, P. Xiao, L. Lu, and J. Y. Lee, “Increasing the High Rate Performance of Mixed Metal Phospho-Olivine Cathodes Trough Collective and Cooperative Strategies,” Journal of Power Sources 247 (2014): 273–279.

[178]

M. S. Kim, H. K. Kim, S. W. Lee, et al., “Synthesis of Reduced Graphene Oxide-Modified LiMn0.75Fe0.25PO4 Microspheres by Salt-Assisted Spray Drying for High-Performance Lithium-Ion Batteries,” Scientific Reports 6 (2016): 26686.

[179]

M. Jo, H. Yoo, Y. S. Jung, and J. Cho, “Carbon-Coated Nanoclustered LiMn0.71Fe0.29PO4 Cathode for Lithium-Ion Batteries,” Journal of Power Sources 216 (2012): 162–168.

[180]

F. Leng, X. Yan, L. Jing, et al., “Electrospun Polycrystalline LiFe0.2Mn0.8PO4/Carbon Composite Fibers for Lithium-Ion Battery,” Colloids and Surfaces A: Physicochemical and Engineering Aspects 495 (2016): 54–61.

[181]

J. Yang, R. Tan, D. Li, J. Ma, and X. Duan, “Ionic Liquid Assisted Electrospinning of Porous LiFe0.4Mn0.6PO4/CNFs as Free-Standing Cathodes With a Pseudocapacitive Contribution for High-Performance Lithium-Ion Batteries,” Chemistry—A European Journal 26 (2020): 5341–5346.

[182]

R. von Hagen, H. Lorrmann, K. C. Möller, and S. Mathur, “Electrospun LiFe1−yMnyPO4/C Nanofiber Composites as Self-Supporting Cathodes in Li-Ion Batteries,” Advanced Energy Materials 2 (2012): 553–559.

[183]

B. Zhang, S. Wang, L. Liu, et al., “One-Pot Solvothermal Synthesis of S-Doped LiMn0.5Fe0.5PO4@N/S-doped C Core-Shell Structured Composites for Lithium-Ion Batteries,” Materials Letters 323 (2022): 132586.

[184]

Z. Peng, B. Zhang, G. Hu, et al., “Green and Efficient Synthesis of Micro-Nano LiMn0.8Fe0.2PO4/C Composite With High-Rate Performance for Li-ion Battery,” Electrochimica Acta 387 (2021): 138456.

[185]

H. Yang, C. Fu, Y. Sun, L. Wang, and T. Liu, “Fe-Doped LiMnPO4@C Nanofibers With High Li-Ion Diffusion Coefficient,” Carbon 158 (2020): 102–109.

[186]

H. Chang, Y. Li, Z. K. Fang, J. P. Qu, Y. R. Zhu, and T. F. Yi, “Construction of Carbon-Coated LiMn0.5Fe0.5PO4@Li0.33La0.56TiO3 Nanorod Composites for High-Performance Li-Ion Batteries,” ACS Applied Materials & Interfaces 13 (2021): 33102–33111.

[187]

Y. Wan, Q. Zheng, and D. Lin, “Recent Development of LiMnPO4 as Cathode Materials of Lithium-Ion Batteries,” Acta Chimica Sinica 72 (2014): 537–551.

[188]

J. Li, S.-H. Yao, H.-M. Zhou, and W.-J. Geng, “Preparation of LiMn0.4Fe0.6PO4/C Composite by A New Route Combining Solid-State Reaction With Hydrothermal Synthesis,” Journal of Inorganic Materials 29 (2014): 443–448.

[189]

Q. Deng, T. Li, J. Wang, et al., “Hydrothermal Synthesis of LiMn0.79Fe0.2Mg0.01PO4/C Composite Cathode Materials Using Different Li3PO4 Precursors,” Ceramics International 50 (2024): 13702–13710.

[190]

L. Wang, P. Zuo, G. Yin, et al., “Improved Electrochemical Performance and Capacity Fading Mechanism of Nano-Sized LiMn0.9Fe0.1PO4 Cathode Modified by Polyacene Coating,” Journal of Materials Chemistry A 3 (2015): 1569–1579.

[191]

W. Xiang, Z.-G. Wu, E.-H. Wang, et al., “Confined Synthesis of Graphene Wrapped LiMn0.5Fe0.5PO4 Composite via Two Step Solution Phase Method as High Performance Cathode for Li-Ion Batteries,” Journal of Power Sources 329 (2016): 94–103.

[192]

S.-Y. Yan, C.-Y. Wang, R.-M. Gu, and M.-W. Li, “Enhanced Kinetic Behaviors of LiMn0.5Fe0.5PO4/C Cathode Material by Fe Substitution and Carbon Coating,” Journal of Solid State Electrochemistry 19 (2015): 2943–2950.

[193]

X. Yao, D. Li, L. Guo, et al., “Carbon-Coated LiMn0.8Fe0.2PO4 Cathodes for High-Rate Lithium-Ion Batteries,” Advanced Composites and Hybrid Materials 7 (2024): 63.

[194]

I. Seo, B. Senthilkumar, K.-H. Kim, J.-K. Kim, Y. Kim, and J.-H. Ahn, “Atomic Structural and Electrochemical Impact of Fe Substitution on Nano Porous LiMnPO4,” Journal of Power Sources 320 (2016): 59–67.

[195]

M. E. Schuster, D. Teschner, J. Popovic, et al., “Charging and Discharging Behavior of Solvothermal LiFePO4 Cathode Material Investigated by Combined EELS/NEXAFS Study,” Chemistry of Materials 26 (2014): 1040–1047.

[196]

S.-M. Oh, S.-W. Oh, C.-S. Yoon, B. Scrosati, K. Amine, and Y.-K. Sun, “High-Performance Carbon-LiMnPO4 Nanocomposite Cathode for Lithium Batteries,” Advanced Functional Materials 20 (2010): 3260–3265.

[197]

B. Zhang, S. Wang, L. Liu, H. Liu, and J. Yang, “Enhancement of Li2ZrO3 Modification of the Cycle Life of N/S-Doped LiMn0.5Fe0.5PO4/C Composite Cathodes for Lithium Ion Batteries,” Langmuir 39 (2023): 5187–5198.

[198]

S. Huang, W. Lin, L. Li, et al., “Pathway for High-Energy Density LiMnFePO4 Cathodes,” Progress in Natural Science: Materials International 33 (2023): 126–131.

[199]

S. Du, Y.-l. Liang, Z. Song, S.-l. Chen, L. Zeng, and C.-l. Fan, “Effect of Graphene Sheet and Toluene-Soluble Component of Pitch on the Preparation, Structure, and Performance of LiMn0.8Fe0.2PO4@C@GNs,” Journal of Applied Electrochemistry 53 (2023): 2295–2309.

[200]

J. Zhang, X. Ke, Y. Wang, and J. Xue, “The Effect of Oxygen Vacancy Defects on the Structure and Electrochemical Behaviors of LiMn0.65Fe0.35PO4 Cathode,” Journal of the Electrochemical Society 171 (2024): 070528.

[201]

P. Wang, E. Zhang, Y. Fang, et al., “Na/Co Dual-Doped Olivine LiMn0.6Fe0.4PO4 Cathode With Superior Reaction Kinetics for Li-Ion Batteries,” Journal of Solid State Electrochemistry 28 (2024): 4303–4310.

[202]

H. Jin, J. Zhang, L. Qin, Y. Hu, H. Jiang, and C. Li, “Dual Modification of Olivine LiFe0.5Mn0.5PO4 Cathodes With Accelerated Kinetics for High-Rate Lithium-Ion Batteries,” Industrial & Engineering Chemistry Research 62 (2023): 1029–1034.

[203]

J. Li, Y. Wang, J. Wu, et al., “Preparation of Enhanced-Performance LiMn0.6Fe0.4PO4/C Cathode Material for Lithium-Ion Batteries by Using a Divalent Transition-Metal Phosphate as an Intermediate,” ChemElectroChem 4 (2016): 175–182.

[204]

S. Tian, K. Zhang, J. Cao, H. Guo, R. Liu, and G. Liang, “Spherical Ni-Doped LiMn0.6Fe0.4PO4/C Composites With High-Rate Performance,” Ionics 27 (2021): 2877–2887.

[205]

S. Reed, K. Scanlan, and A. Manthiram, “Scalable, Low-Cost Synthesis of High Volumetric Capacity LiMn0.5Fe0.5PO4 Cathode for Lithium-Ion Batteries,” Journal of Materials Chemistry A 12 (2024): 21341–21349.

[206]

Y. L. Liang, S. L. Chen, C. L. Fan, J. X. Yang, Z. Y. Song, and X. H. Zeng, “High-performance LiMn0.8Fe0.2PO4/C Cathode Prepared by Using the Toluene-Soluble Component of Pitch as a Carbon Source,” International Journal of Energy Research 45 (2021): 19103–19119.

[207]

T. Zeng, Z. Hu, Z. Zhou, et al., “Boron-Catalyzed Graphitization Carbon Layer Enabling LiMn0.8Fe0.2PO4 Cathode Superior Kinetics and Li-Storage Properties,” Small Methods 7 (2023): e2201390.

[208]

T. Zeng, P. Gao, Z. Zhou, et al., “Superior Electronic/Ionic Kinetics of Mn0.8Fe0.2PO4 LiMn0.8Fe0.2PO4@C Nanoparticles Cathode by Doping Strategy Toward Enhanced Li-Ion Storage,” Energy Storage Materials 65 (2024): 103125.

[209]

L. Liao, H. Wang, H. Guo, et al., “Facile Solvothermal Synthesis of Ultrathin LiFexMn1−xPO4 Nanoplates as Advanced Cathodes With Long Cycle Life and Superior Rate Capability,” Journal of Materials Chemistry A 3 (2015): 19368–19375.

[210]

X. Zhang, M. Hou, A. G. Tamirate, H. Zhu, C. Wang, and Y. Xia, “Carbon Coated Nano-Sized LiMn0.8Fe0.2PO4 Porous Microsphere Cathode Material for Li-ion Batteries,” Journal of Power Sources 448 (2020): 227438.

[211]

Y. Hong, Z. Tang, Z. Hong, and Z. Zhang, “LiMn1−xFe PO4 (X = 0, 0.1, 0.2) Nanorods Synthesized By a Facile Solvothermal Approach as High Performance Cathode Materials for Lithium-Ion Batteries,” Journal of Power Sources 248 (2014): 655–659.

[212]

L. Hu, B. Qiu, Y. Xia, et al., “Solvothermal Synthesis of Fe-Doping LiMnPO4 Nanomaterials for Li-Ion Batteries,” Journal of Power Sources 248 (2014): 246–252.

[213]

K. Kisu, E. Iwama, W. Onishi, S. Nakashima, W. Naoi, and K. Naoi, “Ultrafast Nano-Spherical Single-Crystalline LiMn0.792Fe0.198Mg0.010PO4 Solid-solution Confined Among Unbundled Interstices of SGCNTs,” Journal of Materials Chemistry A: Materials for Energy and Sustainability 2 (2014): 20789–20798.

[214]

J. Li, C. Guo, Y. Qin, and X. Ning, “Ascorbic Acid-Assisted Solvothermal Synthesis of LiMn1−xFexPO4/C Nanoparticles for High-Performance Li-Ion Cathode Materials,” Materials Technology 35 (2020): 565–571.

[215]

W.-C. Chien and Z.-M. Hsieh, “Preparation of LiFe1–xMnxPO4/C Cathode Materials at a pH of 6.5 Using a Hydrothermal Process With High-Temperature Calcination,” Thin Solid Films 700 (2020): 137890.

[216]

T. Luo, T. Zeng, S. Chen, et al., “Structure, Performance, Morphology and Component Transformation Mechanism of LiMn0.8Fe0.2PO4/C Nanocrystal With Excellent Stability,” Journal of Alloys and Compounds 834 (2020): 155143.

[217]

Z. Dai, L. Wang, X. He, et al., “Morphology Regulation of Nano LiMn0.9Fe0.1PO4 by Solvothermal Synthesis for Lithium Ion Batteries,” Electrochimica Acta 112 (2013): 144–148.

[218]

C.-C. Xu, Y. Wang, L. Li, Y.-J. Wang, L.-F. Jiao, and H.-T. Yuan, “Hydrothermal Synthesis Mechanism and Electrochemical Performance of LiMn0.6Fe0.4PO4 Cathode Material,” Rare Metals 38 (2015): 29–34.

[219]

J. Cao, C. Zhong, J. Shi, J. Hu, Y. Zhang, and J. Ou, “PVP-Assisted Preparation of High-Performance LiMn0.6Fe0.4PO4/C Cathode Materials,” Journal of Electroanalytical Chemistry 963 (2024): 118296.

[220]

A. K. Budumuru, M. Viji, A. Jena, B. R. K. Nanda, and C. Sudakar, “Mn Substitution Controlled Li-Diffusion in Single Crystalline Nanotubular LiFePO4 High Rate-Capability Cathodes: Experimental and Theoretical Studies,” Journal of Power Sources 406 (2018): 50–62.

[221]

W. Xiang, E.-H. Wang, M.-Z. Chen, et al., “Hierarchical Structured LiMn0.5Fe0.5PO4 Spheres Synthesized by Template-Engaged Reaction as Cathodes for High Power Li-Ion Batteries,” Electrochimica Acta 178 (2015): 353–360.

[222]

W. Tian, Y. Zheng, K. Zhang, et al., “Facile Synthesis and Excellent Electrochemical Performance of LiMn0.6Fe0.4PO4/C With 3D Conductive Network,” Ionics 26 (2020): 5981–5989.

[223]

J. Xiong, Y. Wang, Y. Wang, Z. Li, and J. Zhang, “Three-Dimensional (3D) LiMn0.8Fe0.2PO4 Nanoflowers Assembled From Interconnected Nanoflakes as Cathode Materials for Lithium Ion Batteries,” Ceramics International 43 (2017): 3190–3195.

[224]

J.-Y. Liao and A. Manthiram, “Surface-Modified Concentration-Gradient Ni-Rich Layered Oxide Cathodes for High-Energy Lithium-Ion Batteries,” Journal of Power Sources 282 (2015): 429–436.

[225]

P. Zuo, L. Wang, W. Zhang, et al., “A Novel Nanoporous Fe-Doped Lithium Manganese Phosphate Material With Superior Long-Term Cycling Stability for Lithium-Ion Batteries,” Nanoscale 7 (2015): 11509–11514.

[226]

N. V. Kosova, O. A. Podgornova, and A. K. Gutakovskii, “Different Electrochemical Responses of LiFe0.5Mn0.5PO4 Prepared by Mechanochemical and Solvothermal Methods,” Journal of Alloys and Compounds 742 (2018): 454–465.

[227]

X. Liu, B. Ouyang, R. Hao, et al., “Li2SiO3 Modification of C/LiFe0.5Mn0.5PO4 for High Performance Lithium-Ion Batteries,” ChemElectroChem 9 (2022): e202200609.

[228]

L. Wang, Y. Li, J. Wu, et al., “Synthesis Mechanism and Characterization of LiMn0.5Fe0.5PO4/C Composite Cathode Material for Lithium-Ion Batteries,” Journal of Alloys and Compounds 839 (2020): 155653.

[229]

Y.-J. Zhong, J.-T. Li, Z.-G. Wu, X.-D. Guo, B.-H. Zhong, and S.-G. Sun, “LiMn0.5Fe0.5PO4 Solid Solution Materials Synthesized by Rheological Phase Reaction and Their Excellent Electrochemical Performances as Cathode of Lithium Ion Battery,” Journal of Power Sources 234 (2013): 217–222.

[230]

Z.-X. Chi, W. Zhang, X.-S. Wang, et al., “Accurate Surface Control of Core–Shell Structured LiMn0.5Fe0.5PO4@C for Improved Battery Performance,” Journal of Materials Chemistry A: Materials for Energy and Sustainability 2 (2014): 17359–17365.

[231]

J.-K. Kim, R. Vijaya, L. Zhu, and Y. Kim, “Improving Electrochemical Properties of Porous Iron Substituted Lithium Manganese Phosphate in Additive Addition Electrolyte,” Journal of Power Sources 275 (2015): 106–110.

[232]

J. Chen, N. Zhao, G.-D. Li, et al., “High-Rate and Long-Term Cycling Capabilities of LiFe0.4Mn0.6PO4/C Composite for Lithium-Ion Batteries,” Journal of Solid State Electrochemistry 19 (2015): 1535–1540.

[233]

D. Pan, Z. Liu, C. Li, et al., “Modification of LiMn0.6Fe0.4PO4 Lithium-Ion Battery Cathode Materials With a Fluorine-Doped Carbon Coating,” Particuology 92 (2024): 278–287.

[234]

G. Liu, F. Liu, Q. Wang, G. Liu, and L. Wen, “Novel Carbon Coating Source for Better LiMn0.6Fe0.4PO4/C Materials,” Ionics 30 (2024): 3855–3862.

[235]

J. Zhang, Y. Liu, B. Wang, and W. Yao, “Improved Electrochemical Performance of LiMn0.6Fe0.4PO4 via Chitosan-Derived Nitrogen-Doped Carbon Coating,” Batteries Supercaps 7 (2024): e202400105.

[236]

C. Li, X. Yu, C. Liao, et al., “Surface Modification Engineering Enabling LiMnxFe1−xPO4 Cathode Against Aggressive Cathode Chemistries for Excellent Performance Lithium-Ion Batteries,” ChemNanoMat 10 (2024): e202300558.

[237]

H. Gu, W. Li, Q. Li, et al., “Electrochemical Properties of Li4Ti5O12 Coated LiMn0.6Fe0.4PO4 Prepared by Rheological Phase Reaction Method,” Journal of the Electrochemical Society 171 (2024): 040502.

[238]

L. Wang, Y. Sun, Y. Li, Z. Xuan, and Y. Yao, “Effect of Sintering Temperature on the Morphology and Electrochemical Properties of LiMn0.5Fe0.5PO4/C Synthesized via Solid State Method,” Ionics 29 (2023): 4519–4526.

[239]

H. Xiong, Z. Zhang, J. Dai, et al., “A Uniform Conductive Carbon Coating of Nitrogen-Doped Carbon Improves the Electrochemical Performance of LiMn0.7Fe0.3PO4 Cathode Material for Lithium-Ion Batteries,” ChemElectroChem 11 (2024): e202400440.

[240]

P. Su, H. Zhang, L. Yang, et al., “Effects of Conductive Additives on the Percolation Networks and Rheological Properties of LiMn0.7Fe0.3PO4 Suspensions for Lithium Slurry Battery,” Chemical Engineering Journal 433 (2022): 133203.

[241]

Y. Li, Z. Xu, X. Zhang, et al., “Tuning the Electrochemical Behaviors of N-Doped LiMnxFe1–xPO4/C via Cation Engineering With Metal-Organic Framework-Templated Strategy,” Journal of Energy Chemistry 85 (2023): 239–253.

[242]

B. Z. Li, Y. Wang, L. Xue, X. P. Li, and W. S. Li, “Acetylene Black-Embedded LiMn0.8Fe0.2PO4/C Composite as Cathode for Lithium Ion Battery,” Journal of Power Sources 232 (2013): 12–16.

[243]

Y. Wang, F. Yong, Z. Wang, et al., “LiMn0.8Fe0.2PO4/C Nanoparticles via Polystyrene Template Carburizing Enhance the Rate Capability and Capacity Reversibility of Cathode Materials,” ACS Applied Nano Materials 7 (2024): 4024–4034.

[244]

Q. Yuan, Z. Li, A. Wei, et al., “Effects of Liquid-Phase Carbon Combining Surfactant Coatings on the Performance of LiMn0.2Fe0.8PO4 Cathode Materials,” Journal of Alloys and Compounds 1006 (2024): 176288.

[245]

Y. Li, B. Xing, H. Zhang, et al., “Simple Synthesis of a Hierarchical LiMn0.8Fe0.2PO4/C Cathode by Investigation of Iron Sources for Lithium-Ion Batteries,” RSC Advances 12 (2022): 26070–26077.

[246]

R. Fan, C. Fan, Z. Hu, et al., “Construction of High Performance N-Doped Carbon Coated LiMn0.8Fe0.2PO4 Nanocrystal Cathode for Lithium-Ion Batteries,” Journal of Alloys and Compounds 876 (2021): 160090.

[247]

Z. Song, S. Chen, S. Du, and C. Fan, “Construction of High-Performance LiMn0.8Fe0.2PO4/C Cathode by Using Quinoline Soluble Substance From Coal Pitch as Carbon Source for Lithium Ion Batteries,” Journal of Alloys and Compounds 927 (2022): 166921.

[248]

Y. Li, B. Xing, Z. Wang, et al., “Constructing a Hierarchical LiMn0.8Fe0.2PO4/C Cathode via Comodification of Li3PO4 and Graphite for High-Performance Lithium-Ion Batteries,” ACS Applied Energy Materials 5 (2022): 10983–10993.

[249]

H. Hu, X. Liu, Y. Lei, et al., “Enhancing the Ultra-High Rate Capability of Manganese-Based Olivine Cathode by in Situ Catalytic Growth of Graphene Carbon Layer,” Journal of Energy Storage 79 (2024): 110198.

[250]

L. Yang, Y. Xia, X. Fan, L. Qin, B. Qiu, and Z. Liu, “Constructing Durable Carbon Layer on LiMn0.8Fe0.2PO4 With Superior Long-Term Cycling Performance for Lithium-Ion Battery,” Electrochimica Acta 191 (2016): 200–206.

[251]

C. H. Mi, X. G. Zhang, X. B. Zhao, and H. L. Li, “Synthesis and Performance of LiMn0.6Fe0.4PO4/nano-carbon Webs Composite Cathode,” Materials Science and Engineering: B 129 (2006): 8–13.

[252]

X.-T. Wang, Y. Yang, J.-Z. Guo, et al., “An Advanced Cathode Composite for Co-Utilization of Cations and Anions in Lithium Batteries,” Journal of Materials Science & Technology 102 (2022): 72–79.

[253]

J. Breczko, M. Wysocka-Żołopa, E. Grądzka, and K. Winkler, “Zero-Dimensional Carbon Nanomaterials for Electrochemical Energy Storage,” ChemElectroChem 11 (2024): e202300752.

[254]

S.-M. Oh, H.-G. Jung, C. S. Yoon, et al., “Enhanced Electrochemical Performance of Carbon–LiMn1−xFexPO4 Nanocomposite Cathode for Lithium-Ion Batteries,” Journal of Power Sources 196 (2011): 6924–6928.

[255]

T. T. D. Nguyen, L. Dimesso, G. Cherkashinin, et al., “Synthesis and Characterization of LiMn1−xFexPO4/Carbon Nanotubes Composites as Cathodes for Li-Ion Batteries,” Ionics 19 (2013): 1229–1240.

[256]

G. Li, H. Azuma, and M. Tohda, “Optimized LiMnyFe1−yPO4 as the Cathode for Lithium Batteries,” Journal of the Electrochemical Society 149 (2002): A743–A747.

[257]

H. C. Shim, S. Bang, D.-M. Yoon, Y. Kong, and T. Yu, “High-Performance LiMn0.8Fe0.2PO4 With Hybrid Conductive Additives Based on Functionalized and Etched Multi-Walled Carbon Nanotubes by Self-Destruction During the Lithiation Process,” Journal of Alloys and Compounds 649 (2015): 1315–1322.

[258]

D. Ding, Y. Maeyoshi, M. Kubota, J. Wakasugi, K. Kanamura, and H. Abe, “A Facile Way to Synthesize Carbon-Coated LiMn0.7Fe0.3PO4/Reduced Graphene Oxide Sandwich-Structured Composite for Lithium-Ion Batteries,” ACS Applied Energy Materials 2 (2019): 1727–1733.

[259]

F. Wen, T. Lv, P. Gao, et al., “Graphene-Embedded LiMn0.8Fe0.2PO4 Composites With Promoted Electrochemical Performance for Lithium Ion Batteries,” Electrochimica Acta 276 (2018): 134–141.

[260]

D. Ding, Y. Maeyoshi, M. Kubota, J. Wakasugi, K. Kanamura, and H. Abe. “Holey Reduced Graphene Oxide/Carbon Nanotube/LiMn0.7Fe0.3PO4 Composite Cathode for High-Performance Lithium Batteries,” Journal of Power Sources 449 (2020): 227553.

[261]

F. Ma, X. Zhang, P. He, X. Zhang, P. Wang, and H. Zhou, “Synthesis of Hierarchical and Bridging Carbon-Coated LiMn0.9Fe0.1PO4 Nanostructure as Cathode Material With Improved Performance for Lithium Ion Battery,” Journal of Power Sources 359 (2017): 408–414.

[262]

Z. Li, X. Ren, W. Tian, et al., “LiMn0.6Fe0.4PO4/Ca Cathode Materials With Carbon Aerogel as Additive Synthesized by Wet Ball-Milling Combined With Spray Drying,” Journal of the Electrochemical Society 167 (2020): 090516.

[263]

G. Han, Q. Hu, K. Gao, Y. Wang, and J. Yao, “LiFe0.3Mn0.7PO4-on-MXene Heterostructures as Highly Reversible Cathode Materials for Lithium-Ion Batteries,” Journal of Colloid and Interface Science 677 (2025): 513–522.

[264]

T.-F. Yi, P.-P. Peng, Z. Fang, Y.-R. Zhu, Y. Xie, and S. Luo, “Carbon-Coated LiMn1−xFexPO4 (0≤x≤0.5) Nanocomposites as High-Performance Cathode Materials for Li-Ion Battery,” Composites, Part B: Engineering 175 (2019): 107067.

[265]

C.-C. Yang and W.-H. Chen, “Microsphere LiFe0.5Mn0.5PO4/C Composite as High Rate and Long-Life Cathode Material for Lithium-Ion Battery,” Materials Chemistry and Physics 173 (2016): 482–490.

[266]

Y. Wang, C.-Y. Wu, H. Yang, and J.-G. Duh, “Rational Design of a Synthetic Strategy, Carburizing Approach and Pore-Forming Pattern to Unlock the Cycle Reversibility and Rate Capability of Micro-Agglomerated LiMn0.8Fe0.2PO4 Cathode Materials,” Journal of Materials Chemistry A 6 (2018): 10395–10403.

[267]

Y. Wang, B. Zhu, X. Liu, and F. Wang, “Surfactant-Assisted Solid-State Synthesis of 6LiMn0.8Fe0.2PO4·Li3V2(PO4)3/C Nanocomposite for Lithium-Ion Batteries,” RSC Advances 7 (2017): 27235–27242.

[268]

Y. Li, G. Xu, S. Fan, et al., “Synthesis of Carbon-Coated LiMn0.8Fe0.2PO4 Materials via an Aqueous Rheological Phase-Assisted Solid-State Method,” Journal of Solid State Electrochemistry 24 (2020): 821–828.

[269]

G. Hu, Y. Wang, K. Du, Z. Peng, X. Xie, and Y. Cao, “Synthesis and Characterization of LiMn0.8Fe0.2PO4/rGO/C for Lithium-Ion Batteries via In-Situ Coating of Mn0.8Fe0.2C2O4·2H2O Precursor With Graphene Oxide,” Journal of Solid State Electrochemistry 24 (2020): 2441–2450.

[270]

D. Ding, Y. Maeyoshi, M. Kubota, J. Wakasugi, K. Kanamura, and H. Abe, “Highly Improved Performances of LiMn0.7Fe0.3PO4 Cathode With In Situ Electrochemically Reduced Graphene Oxide,” Journal of Alloys and Compounds 793 (2019): 627–634.

[271]

W. Chen, D. Xu, Y. Chen, et al., “In Situ Electrospinning Synthesis of N-Doped C Nanofibers With Uniform Embedding of Mn Doped MFe1−xMnxPO4 (M = Li, Na) as a High Performance Cathode for Lithium/Sodium-Ion Batteries,” Advanced Materials Interfaces 7 (2020): 2000684.

[272]

X. Wu, C. Li, Z. Zhang, et al., “Nitrogen-Doped Microporous Graphite-Enhanced Copper Plasmonic Effect for Solar Evaporation,” Carbon Energy 6 (2024): e466.

[273]

C. Yang, W. Zhong, Y. Liu, et al., “Regulating Solid Electrolyte Interphase Film on Fluorine-Doped Hard Carbon Anode for Sodium-Ion Battery,” Carbon Energy 6 (2024): e503.

[274]

K. Tuo, L. Mao, H. Ding, et al., “Boron and Phosphorus Dual-Doped Carbon Coating Improves Electrochemical Performances of LiFe0.8Mn0.2PO4 Cathode Materials,” ACS Applied Energy Materials 4 (2021): 8003–8015.

[275]

T.-F. Yi, Y. Li, Z. Fang, P. Cui, S. Luo, and Y. Xie, “Improving the Cycling Stability and Rate Capability of LiMn0.5Fe0.5PO4/C Nanorod as Cathode Materials by LiAlO2 Modification,” Journal of Materiomics 6 (2020): 33–44.

[276]

P. Molaiyan, J. Valikangas, R. Sliz, et al., “Screen-Printed Composite LiFePO4-LLZO Cathodes Towards Solid-State Li-Ion Batteries,” ChemElectroChem 11 (2024): e202400051.

[277]

S. Moon, P. Muralidharan, and D. K. Kim, “Carbon Coating by High-Energy Milling and Electrochemical Properties of LiMnPO4 Obtained in Polyol Process,” Ceramics International 38 (2012): S471–S475.

[278]

R. Li, C. Fan, W. Zhang, M. Tan, T. Zeng, and S. Han, “Structure and Performance of Na+ and Fe2+ Co-doped Li1−xNaxMn0.8Fe0.2PO4/C Nanocapsule Synthesized by a Simple Solvothermal Method for Lithium Ion Batteries,” Ceramics International 45 (2019): 10501–10510.

[279]

L. Qin, Y. Xia, H. Cao, L. Yang, and Z. Liu, “Synthesis and Electrochemical Performance of LiMnxFey(V▯)1−xyPO4 Cathode Materials for Lithium-Ion Batteries,” Electrochimica Acta 222 (2016): 1660–1667.

[280]

P. Xiao, Y. Cai, X. Chen, Z. Sheng, and C. Chang, “Improved Electrochemical Performance of LiFe0.4Mn0.6PO4/C With Cr3+ Doping,” RSC Advances 7 (2017): 31558–31566.

[281]

B. C. Sin, S. U. Lee, B.-S. Jin, et al., “Experimental and Theoretical Investigation of Fluorine Substituted LiFe0.4Mn0.6PO4 as Cathode Material for Lithium Rechargeable Batteries,” Solid State Ionics 260 (2014): 2–7.

[282]

H. Hu, H. Li, Y. Lei, et al., “Mg-Doped LiMn0.8Fe0.2PO4/C Nano-Plate as a High-Performance Cathode Material for Lithium-Ion Batteries,” Journal of Energy Storage 73 (2023): 109006.

[283]

X.-Y. Lv, Q.-Y. Huang, Z. Wu, J. Su, Y.-F. Long, and Y.-X. Wen, “Li0.995Nb0.005Mn0.85Fe0.15PO4/C as a High-Performance Cathode Material for Lithium-Ion Batteries,” Journal of Solid State Electrochemistry 21 (2017): 1499–1507.

[284]

C. Hu, H. Yi, H. Fang, et al., “Improving the Electrochemical Activity of LiMnPO4 via Mn-Site Co-Substitution With Fe and Mg,” Electrochemistry Communications 12 (2010): 1784–1787.

[285]

D. Jang, K. Palanisamy, J. Yoon, Y. Kim, and W.-S. Yoon, “Crystal and Local Structure Studies of LiFe0.48Mn0.48Mg0.04PO4 Cathode Material for Lithium Rechargeable Batteries,” Journal of Power Sources 244 (2013): 581–585.

[286]

V. Ramar and P. Balaya, “Enhancing the Electrochemical Kinetics of High Voltage Olivine LiMnPO4 by Isovalent Co-Doping,” Physical Chemistry Chemical Physics 15 (2013): 17240.

[287]

S. Liu, H. Fang, E. Dai, et al., “Effect of Carbon Content on Properties of LiMn0.8Fe0.19Mg0.01PO4/C Composite Cathode for Lithium Ion Batteries,” Electrochimica Acta 116 (2014): 97–102.

[288]

B.-K. Zou, Y. Shao, Z.-Y. Qiang, J.-Y. Liao, Z.-F. Tang, and C.-H. Chen, “LiMPO4 and Derived NaMPO4 (M = Mn, Fe, Mg) With Excellent Electrochemical Properties for Lithium/Sodium Ion Batteries,” Journal of Power Sources 336 (2016): 231–239.

[289]

C. Hu, B. Wang, J. Huihua, J. Zhang, Y. Hu, and J. Li, “Enhancement of Cycling Stability of LiMnPO4 at Elevated Temperature by Fe-Mg Co-Substitution,” International Journal of Electrochemical Science 13 (2018): 5824–5831.

[290]

X. Chu, L. Li, W. Chen, and H. Fang, “Hydrothermal Synthesis and Electrochemical Performance of Multicomponent LiMn0.8Fe0.19Mg0.01PO4,” Ionics 27 (2021): 2927–2935.

[291]

K. Zhang, J. Cao, S. Tian, et al., “The Prepared and Electrochemical Property of Mg-Doped LiMn0.6Fe0.4PO4/C as Cathode Materials for Lithium-Ion Batteries,” Ionics 27 (2021): 4629–4637.

[292]

W. Xiang, Y. Zhong, Y. Tang, et al., “Improving the Electrochemical Kinetics of Lithium Manganese Phosphate via Co-Substitution With Iron and Cobalt,” Journal of Alloys and Compounds 635 (2015): 180–187.

[293]

H. Yi, C. Hu, X. He, and H. Xu, “Electrochemical Performance of LiMnPO4 by Fe and Zn Co-Doping for Lithium-Ion Batteries,” Ionics 21 (2014): 667–671.

[294]

Y. Cai, D. Zhang, C. Chang, Z. Sheng, and K. Huang, “Electrochemical Comparison of LiFe0.4Mn0.595Cr0.005PO4/C and LiMnPO4/C Cathode Materials,” Ionics 22 (2016): 1011–1019.

[295]

J. Duan, G. Hu, Y. Cao, K. Du, and Z. Peng, “Synthesis of High-Performance Fe–Mg-Co-Doped LiMnPO4/C via a Mechano-Chemical Liquid-Phase Activation Technique,” Ionics 22 (2016): 609–619.

[296]

Q.-Y. Huang, Z. Wu, J. Su, Y.-F. Long, X.-Y. Lv, and Y.-X. Wen, “Synthesis and Electrochemical Performance of Ti–Fe Co-Doped LiMnPO4/C as Cathode Material for Lithium-Ion Batteries,” Ceramics International 42 (2016): 11348–11354.

[297]

J. Peng, Z. Li, Y. You, et al., “Contribution of Ti-Doping to the Cyclic Stability of LiFe0.6Mn0.4PO4/C,” Industrial & Engineering Chemistry Research 63 (2024): 8228–8238.

[298]

T. Wu, J. Liu, L. Sun, et al., “V-Insertion In Li(Fe,Mn)FePO4,” Journal of Power Sources 383 (2018): 133–143.

[299]

Y. Cao, J. He, W. Tu, et al., “Beneficial Effect of Incorporating Particle Nanocrystalline and V3+ Doping Into High-Energy-Density LiMn0.8Fe0.2PO4 for Lithium-Ion Batteries,” Solid State Ionics 411 (2024): 116576.

[300]

Z. Li, Y. You, Z. Zhu, et al., “The Synergistic Enhancement of Electrochemical Performance in LiMn0.5Fe0.5PO4 Through V Doping and V2CTx MXene Coating,” Journal of Energy Storage 110 (2025): 115111.

[301]

H. Guo, R. Liu, W. Li, et al., “Site Selection of Niobium-Doped LiMn0.6Fe0.4PO4 and Effect on Electrochemical Properties,” Journal of the Electrochemical Society 170 (2023): 030542.

[302]

W. Liu, X. Liu, R. Hao, et al., “Contribution of Calcium Ion Doping to the Rate Property for LiFe0.5Mn0.5PO4/C,” Journal of Electroanalytical Chemistry 929 (2023): 117117.

[303]

J. Zheng, J. Yang, J. Wu, et al., “Y3+ Doping and Electrochemical Properties of LiFe0.5Mn0.5PO4@C Cathode Material for Lithium-Ion Batteries,” Journal of Alloys and Compounds 960 (2023): 170610.

[304]

B. C. Sin, L. Singh, K.-E. Lee, et al., “Enhanced Electrochemical Performance of LiFe0.4Mn0.6(PO4)1−x(BO3)x as Cathode Material for Lithium Ion Batteries,” Journal of Electroanalytical Chemistry 756 (2015): 56–60.

[305]

B. C. Sin, L. Singh, J. An, H. Lee, H. Lee, and Y. Lee, “Enhanced Electrochemical Performance and Manganese Redox Activity of LiFe0.4Mn0.6PO4 by Iodine Anion Substitution as Cathode Material for Li-Ion Battery,” Journal of Power Sources 313 (2016): 112–119.

[306]

S. Qiao, L. Zhu, E. Han, L. Li, C. Du, and Y. He, “Synthesis and Electrochemical Properties of Na and Mg Codoped LiFe0.65Mn0.35PO4/C Cathode Materials for Lithium-Ion Batteries,” International Journal of Electrochemical Science 14 (2019): 10616–10629.

[307]

J. Geng, Z. Zou, T. Wang, et al., “Synthesis and Electrochemical Behavior of K+ and Mn2+ Co-Doped LiFePO4/C as a Cathode Material for Lithium-Ion Batteries and the Mechanism of Modification,” Journal of Electroanalytical Chemistry 933 (2023): 117275.

[308]

Z. Lv, M. Li, J. Lin, et al., “First-Principles Study on LiMn0.5Fe0.5PO4 Doping to Decrease the Jahn-Teller Effect,” Journal of Solid State Electrochemistry 28 (2023): 577–587.

[309]

H. Yi, C. Hu, H. Fang, et al., “Optimized Electrochemical Performance of LiMn0.9Fe0.1−xMgxPO4/C for Lithium Ion Batteries,” Electrochimica Acta 56 (2011): 4052–4057.

[310]

X. Chu, W. Chen, and H. Fang, “Hydrothermal Synthesis of Olivine Phosphates in the Presence of Excess Phosphorus: A Case Study of LiMn0.8Fe0.19Mg0.01PO4,” Ionics 27 (2021): 3259–3269.

[311]

J. Duan, G. Hu, Y. Cao, K. Du, and Z. Peng, “Synthesis of High-Performance Fe–Mg-Co-Doped LiMnPO4/C via a Mechano-Chemical Liquid-Phase Activation Technique,” Ionics 22 (2015): 609–619.

[312]

D. Jang, K. Palanisamy, Y. Kim, and W.-S. Yoon, “Structural and Electrochemical Properties of Doped LiFe0.48Mn0.48Mg0.04PO4 as Cathode Material for Lithium Ion Batteries,” Journal of Electrochemical Science and Technology 4 (2013): 102–107.

[313]

A. Iturrondobeitia, A. Goñi, I. Gil de Muro, et al., “High-Voltage Cathode Materials for Lithium-Ion Batteries: Freeze-Dried LiMn0.8Fe0.1M0.1PO4/C (M = Fe, Co, Ni, Cu) Nanocomposites,” Inorganic Chemistry 54 (2015): 2671–2678.

[314]

L. Wen, Z. Guan, L. Wang, et al., “Synthesis and Electrochemical Properties of Molybdenum-Doped LiMn0.6Fe0.4PO4 Cathode Materials,” Journal of Materials Engineering and Performance 33 (2024): 12884–12890.

[315]

S. Oukahou, M. Maymoun, A. Elomrani, K. Sbiaai, and A. Hasnaoui, “Enhancing the Electrochemical Performance of Olivine LiMnPO4 as Cathode Materials for Lei-Ion Batteries by Ni–Fe Codoping,” ACS Applied Energy Materials 5 (2022): 10591–10603.

[316]

L. Zhang, Z. Liu, G. Wang, et al., “In-Situ Sacrificial Positive Additive Strategy for the Construction of a Stable Negative Interface in Dual Graphite Batteries,” ChemElectroChem 9 (2022): e202101654.

[317]

M. Shiozaki, H. Yamashita, Y. Hirayama, T. Ogami, and K. Kanamura, “Blending Lithium Nickel Manganese Cobalt Oxide With Lithium Iron Manganese Phosphate as Cathode Materials for Lithium-Ion Batteries With Enhanced Electrochemical Performance,” Electrochemistry 91 (2023): 077007.

[318]

S. Lee, K. Scanlan, S. Reed, and A. Manthiram, Advanced Energy Materials 14 (2024): 2403002.

[319]

N. M. Jobst, A. Hoffmann, A. Klein, S. Zink, and M. Wohlfahrt-Mehrens, “Ternary Cathode Blend Electrodes for Environmentally Friendly Lithium-Ion Batteries,” Chemsuschem 13 (2020): 3928–3936.

[320]

K. He, Y. Xiong, C. Zhang, et al., “An Investigation on the Electrochemical and Thermal Characteristics of LiMn0.6Fe0.4PO4/LiNi0.5Co0.2Mn0.3O2 Composite Cathode Materials for Lithium-Ion Batteries in Different Health States,” Journal of the Electrochemical Society 170 (2023): 090501.

[321]

X. Zhao, L. An, J. Sun, and G. Liang, “LiNi0.5Co0.2Mn0.3O2-LiMn0.6Fe0.4PO4 Mixture With Both Excellent Electrochemical Performance and Low Cost as Cathode Material for Power Lithium Ion Batteries,” Journal of The Electrochemical Society 165 (2018): A142–A148.

[322]

L. Chen, B. Yan, H. Wang, X. Jiang, and G. Yang, “Synthesis and Characterization of 0.95LiMn0.95Fe0.05PO4 ·0.05Li3V2 (PO4)3 Nanocomposite by Sol–Gel Method,” Journal of Power Sources 287 (2015): 316–322.

[323]

X. Yu, Q. Li, Q. Liu, et al., “Rheological Phase Reaction Method Synthesis and Characterizations of xLiMn0.5Fe0.5PO4–yLi3V2(PO4)3/C Composites as Cathode Materials for Lithium Ion Batteries,” Journal of Materials Research 35 (2019): 2–11.

[324]

L. Wu, J. Lu, G. Wei, et al., “Synthesis and Electrochemical Properties of xLiMn0.9Fe0.1PO4 · yLi3V2 (PO4)3/C Composite Cathode Materials for Lithium–Ion Batteries,” Electrochimica Acta 146 (2014): 288–294.

[325]

Z. Hong, H. Dong, S. Han, et al., “Nail Penetration-Safe LiNi0.6Co0.2Mn0.2O2 Pouch Cells Enabled by LiMn0.7Fe0.3PO4 Cathode Safety Additive,” Journal of Power Sources 512 (2021): 230505.

[326]

A. Klein, P. Axmann, and M. Wohlfahrt-Mehrens, “Synergetic Effects of LiFe0.3Mn0.7PO4–LiMn1.9Al0.1O4 Blend Electrodes,” Journal of Power Sources 309 (2016): 169–177.

[327]

J. Liu, Y. Wu, B. Zhang, et al., “A Promising Solid-State Synthesis of LiMn1-yFeyPO4 Cathode for Lithium-ion Batteries,” Small 20 (2024): e2309629.

[328]

A. S. Andersson and J. O. Thomas, “The Source of First-Cycle Capacity Loss in LiFePO4,” Journal of Power Sources 97 (2001): 498–502.

RIGHTS & PERMISSIONS

2025 The Author(s). Carbon Neutralization published by Wenzhou University and John Wiley & Sons Australia, Ltd.

PDF

178

Accesses

0

Citation

Detail

Sections
Recommended

/