Progress on Fe-Based Cathode Materials for Sodium-Ion Batteries

Muhammad Hassan , Yanshuo Zhao , Qi Liu , Wenxiu He , Syed Ali Riza , Daobin Mu , Li Li , Renjie Chen , Feng Wu

Carbon Neutralization ›› 2025, Vol. 4 ›› Issue (2) : e70000

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Carbon Neutralization ›› 2025, Vol. 4 ›› Issue (2) : e70000 DOI: 10.1002/cnl2.70000
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Progress on Fe-Based Cathode Materials for Sodium-Ion Batteries

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Abstract

Sodium-ion batteries (SIBs) have received significant interest as an alternative to lithium-ion batteries (LIBs) due to the abundant availability of sodium, low cost, and enhanced safety. Among the various cathode materials explored for SIBs, iron-based cathodes stand out as promising candidates for large-scale energy storage systems due to their affordability, environmentally friendly nature, and non-toxicity. This review provides a comprehensive overview of recent advancements in Fe-based cathode materials like layered oxides, polyanionic compounds, and Prussian blue analogs. We analyze their synthesis techniques, electrochemical properties, and structural features to assess their viability for SIB applications. The impact of different synthesis methods on the electrochemical performance of these materials is highlighted and their underlying mechanisms are examined. Additionally, strategies to enhance key performance such as energy density, cycle life, and conductivity are discussed. We also address the main technical challenges that limit the practical application of iron-based cathodes, including issues with cycle stability and charge/discharge performance. In conclusion, this review presents a comprehensive overview and a forward-looking perspective on the design of Fe-based cathode materials for next-generation SIBs.

Keywords

iron-based cathodes / layered oxide materials / polyanions / prussian blue materials / sodium-ion battery

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Muhammad Hassan, Yanshuo Zhao, Qi Liu, Wenxiu He, Syed Ali Riza, Daobin Mu, Li Li, Renjie Chen, Feng Wu. Progress on Fe-Based Cathode Materials for Sodium-Ion Batteries. Carbon Neutralization, 2025, 4(2): e70000 DOI:10.1002/cnl2.70000

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References

[1]

J. W. Choi and D. Aurbach, “Promise and Reality of Post-Lithium-Ion Batteries With High Energy Densities,” Nature Reviews Materials 1, no. 4 (2016): 16013.

[2]

J.-Y. Hwang, S.-T. Myung, and Y.-K. Sun, “Sodium-Ion Batteries: Present and Future,” Chemical Society Reviews 46, no. 12 (2017):3529–3614.

[3]

F. Li, Z. Wei, A. Manthiram, Y. Feng, J. Ma, and L. Mai, “Sodium-Based Batteries: From Critical Materials to Battery Systems,” Journal of Materials Chemistry A 7, no. 16 (2019):9406–9431.

[4]

X. Zheng, C. Bommier, W. Luo, L. Jiang, Y. Hao, and Y. Huang, “Sodium Metal Anodes for Room-Temperature Sodium-Ion Batteries: Applications, Challenges and Solutions,” Energy Storage Materials 16 (2019):6–23.

[5]

M. Sathiya, K. Hemalatha, K. Ramesha, J. M. Tarascon, and A. S. Prakash, “Synthesis, Structure, and Electrochemical Properties of the Layered Sodium Insertion Cathode Material: NaNi1/3Mn1/3Co1/3O2,” Chemistry of Materials 24, no. 10 (2012):1846–1853.

[6]

Y. Tian, J. Lu, H. Tang, et al., “An Ultra-Stable Anode Material for High/Low-Temperature Workable Super-Fast Charging Sodium-Ion Batteries,” Chemical Engineering Journal 422 (2021): 130054.

[7]

K. M. Abraham, “How Comparable Are Sodium-Ion Batteries to Lithium-Ion Counterparts?,” ACS Energy Letters 5, no. 11 (2020):3544–3547.

[8]

H. Kim, H. Kim, Z. Ding, et al., “Recent Progress in Electrode Materials for Sodium-Ion Batteries,” Advanced Energy Materials 6, no. 19 (2016): 1600943.

[9]

D. Yuan, X. Liang, L. Wu, et al., “A Honeycomb-Layered Na3Ni2SbO6: a High-Rate and Cycle-Stable Cathode for Sodium-Ion Batteries,” Advanced Materials 26, no. 36 (2014):6301–6306.

[10]

Y. Li, Q. Shi, X. Yin, et al., “Construction Nasicon-Type NaTi2 (PO4)3 Nanoshell on the Surface of P2-type Na0.67Co0.2Mn0.8O2 Cathode for Superior Room/Low-Temperature Sodium Storage,” Chemical Engineering Journal 402 (2020): 126181.

[11]

S.-P. Guo, J. C. Li, Q. T. Xu, Z. Ma, and H. G. Xue, “Recent Achievements on Polyanion-Type Compounds for Sodium-Ion Batteries: Syntheses, Crystal Chemistry and Electrochemical Performance,” Journal of Power Sources 361 (2017):285–299.

[12]

Q. Ni, Y. Bai, F. Wu, and C. Wu, “Polyanion-Type Electrode Materials for Sodium-Ion Batteries,” Advanced Science 4, no. 3 (2017): 1600275.

[13]

W. Yang, Q. Liu, Y. Zhao, et al., “Progress on Fe-Based Polyanionic Oxide Cathodes Materials Toward Grid-Scale Energy Storage for Sodium-Ion Batteries,” Small Methods 6, no. 9 (2022): 2200555.

[14]

H. Huang, X. Wu, Y. Gao, et al., “Polyanionic Cathode Materials: A Comparison Between Na-Ion and K-Ion Batteries,” Advanced Energy Materials 14 (2024): 2304251.

[15]

J. Chen, L. Wei, A. Mahmood, et al., “Prussian Blue, Its Analogues and Their Derived Materials for Electrochemical Energy Storage and Conversion,” Energy Storage Materials 25 (2020):585–612.

[16]

W. Wang, Y. Gang, Z. Hu, et al., “Reversible Structural Evolution of Sodium-Rich Rhombohedral Prussian Blue for Sodium-Ion Batteries,” Nature Communications 11, no. 1 (2020): 980.

[17]

K. Lin, Z. He, L. Shen, et al., “Zinc-Substituted Fe-Based Prussian Blue Analogues Induce a Weak Jahn-Teller Effect to Enhance Stability of Sodium Ion Batteries,” Journal of Energy Storage 90 (2024): 111924.

[18]

M. Fayaz, W. Lai, J. Li, et al., “Prussian Blue Analogues and Their Derived Materials for Electrochemical Energy Storage: Promises and Challenges,” Materials Research Bulletin 170 (2024): 112593.

[19]

M. He, S. Liu, J. Wu, and J. Zhu, “Review of Cathode Materials for Sodium-Ion Batteries,” Progress in Solid State Chemistry 74 (2024): 100452.

[20]

H. Gao, J. Zeng, Z. Sun, X. Jiang, and X. Wang, “Advances in Layered Transition Metal Oxide Cathodes for Sodium-Ion Batteries,” Materials Today Energy 42 (2024): 101551.

[21]

X. Liang, J. Y. Hwang, and Y. K. Sun, “Practical Cathodes for Sodium-Ion Batteries: Who Will Take the Crown?,” Advanced Energy Materials 13, no. 37 (2023): 2301975.

[22]

Q. Liu, Z. Hu, W. Li, et al., “Sodium Transition Metal Oxides: The Preferred Cathode Choice for Future Sodium-Ion Batteries?,” Energy &Environmental Science 14, no. 1 (2021):158–179.

[23]

S. Qiao, Q. Zhou, M. Ma, H. K. Liu, S. X. Dou, and S. Chong, “Advanced Anode Materials for Rechargeable Sodium-Ion Batteries,” ACS Nano 17, no. 12 (2023):11220–11252.

[24]

C. Delmas, “Sodium and Sodium-Ion Batteries:50 Years of Research,” Advanced Energy Materials 8, no. 17 (2018): 1703137.

[25]

M. Fichtner, “Recent Research and Progress in Batteries for Electric Vehicles,” Batteries &Supercaps 5, no. 2 (2022): e202100224.

[26]

Y. Fang, Z. Chen, L. Xiao, X. Ai, Y. Cao, and H. Yang, “Recent Progress in Iron-Based Electrode Materials for Grid-Scale Sodium-Ion Batteries,” Small 14, no. 9 (2018): 1703116.

[27]

C. Delmas, C. Fouassier, and P. Hagenmuller, “Structural Classification and Properties of the Layered Oxides,” Physica B+c 99, no. 1–4 (1980):81–85.

[28]

C. Zhao, Y. Lu, L. Chen, and Y. S. Hu, “Ni-Based Cathode Materials for Na-Ion Batteries,” Nano Research 12 (2019):2018–2030.

[29]

Y. Zhou, L. Li, Y. Wu, and H. Xie, “Recent Advances in Surface Coatings of Layered Cathode Materials for High-Performance Sodium-Ion Batteries,” European Journal of Inorganic Chemistry 26, no. 8 (2023): e202200685.

[30]

S. Okada, Y. Takahashi, T. Kiyabu, and T. Doi, “Layered Transition Metal Oxides as Cathodes for Sodium Secondary Battery,” in ECS Meeting Abstracts. (IOP Publishing, 2006).

[31]

J. Zhao, L. Zhao, N. Dimov, S. Okada, and T. Nishida, “Electrochemical and Thermal Properties of α-NaFeO2 Cathode for Na-Ion Batteries,” Journal of the Electrochemical Society 160, no. 5 (2013): A3077–A3081.

[32]

J. Hwang and J. Kim, “A Supercritical Methanol Route for the Synthesis of Sodium Iron Oxide Submicron Plates for Use as a Cathode Material for Sodium-Ion Batteries,” Materials Letters 206 (2017):100–104.

[33]

N. Yabuuchi, H. Yoshida, and S. Komaba, “Crystal Structures and Electrode Performance of Alpha-NaFeO2 for Rechargeable Sodium Batteries,” Electrochemistry 80, no. 10 (2012):716–719.

[34]

Y. Li, Y. Gao, X. Wang, et al., “Iron Migration and Oxygen Oxidation During Sodium Extraction From NaFeO2,” Nano Energy 47 (2018):519–526.

[35]

E. Monyoncho and R. Bissessur, “Unique Properties of α-NaFeO2: De-Intercalation of Sodium via Hydrolysis and the Intercalation of Guest Molecules Into the Extract Solution,” Materials Research Bulletin 48, no. 7 (2013):2678–2686.

[36]

Y. Zhuang, J. Zhao, Y. Zhao, X. Zhu, and H. Xia, “Carbon-Coated Single Crystal O3-NaFeO2 Nanoflakes Prepared via Topochemical Reaction for Sodium-Ion Batteries,” Sustainable Materials and Technologies 28 (2021): e00258.

[37]

X. Wang, G. Liu, T. Iwao, M. Okubo, and A. Yamada, “Role of Ligand-to-Metal Charge Transfer in O3-Type NaFeO2–NaNiO2 Solid Solution for Enhanced Electrochemical Properties,” Journal of Physical Chemistry C 118, no. 6 (2014):2970–2976.

[38]

N. V. Hoang, H. L. T. Nguyen, T. V. Man, L. M. L. Phung, and N. D. Quan, “Layered O3-NaFe0.5Co0.5O2 as High Capacity and Low-Cost Material for Sodium Ion Batteries,” Vietnam Journal of Science and Technology 57, no. 2 (2019):198–206.

[39]

J. Jayachitra, J. Richards Joshua, A. Balamurugan, et al., “High Electrode Performance of Hydrothermally Developed Activated C Coated O3–NaFeO2 Electrode for Na-Ion Batteries Applications,” Ceramics International 49, no. 1 (2023):48–56.

[40]

H. Wang, B. Yang, X. Z. Liao, et al., “Electrochemical Properties of P2-Na2/3 [Ni1/3Mn2/3] O2 Cathode Material for Sodium Ion Batteries When Cycled in Different Voltage Ranges,” Electrochimica Acta 113 (2013):200–204.

[41]

Y. Wen, B. Wang, G. Zeng, K. Nogita, D. Ye, and L. Wang, “Electrochemical and Structural Study of Layered P2-Type Na2/3Ni1/3Mn2/3O2 as Cathode Material for Sodium-Ion Battery,” Chemistry–An Asian Journal 10, no. 3 (2015):661–666.

[42]

S. Xu, H. Chen, C. Li, et al., “A New High-Performance O3-NaNi0.3Fe0.2Mn0.5O2 Cathode Material for Sodium-Ion Batteries,” Ionics 29, no. 5 (2023):1873–1885.

[43]

P.-F. Wang, Y. You, Y. X. Yin, and Y. G. Guo, “An O3-Type Nani0.5Mn0.5O2 Cathode for Sodium-Ion Batteries With Improved Rate Performance and Cycling Stability,” Journal of Materials Chemistry A 4, no. 45 (2016):17660–17664.

[44]

B. Mortemard de Boisse, J. H. Cheng, D. Carlier, et al., “O3–Na xMn1/3Fe2/3O2 as a Positive Electrode Material for Na-Ion Batteries: Structural Evolutions and Redox Mechanisms Upon Na+(De) Intercalation,” Journal of Materials Chemistry A 3, no. 20 (2015):10976–10989.

[45]

H. Wang, X. Z. Liao, Y. Yang, X. Yan, Y. S. He, and Z. F. Ma, “Large-Scale Synthesis of NaNi1/3Fe1/3Mn1/3O2 as High Performance Cathode Materials for Sodium Ion Batteries,” Journal of the Electrochemical Society 163, no. 3 (2016): A565–A570.

[46]

A. Ma, Z. Yin, J. Wang, Z. Wang, H. Guo, and G. Yan, “Al-Doped Nani 1/3 Mn 1/3 Fe 1/3 O 2 for High Performance of Sodium Ion Batteries,” Ionics 26 (2020):1797–1804.

[47]

L. Sun, Y. Xie, X. Z. Liao, et al., “Insight Into Ca-Substitution Effects on O3-Type NaNi1/3Fe1/3Mn1/3O2 Cathode Materials for Sodium-Ion Batteries Application,” Small 14, no. 21 (2018): 1704523.

[48]

N. Li, J. Ren, R. Dang, et al., “Suppressing Phase Transition and Improving Electrochemical Performances of O3-NaNi1/3Mn1/3Fe1/3O2 Through Ionic Conductive Na2SiO3 Coating,” Journal of Power Sources 429 (2019):38–45.

[49]

Y. Yu, D. Ning, Q. Li, et al., “Revealing the Anionic Redox Chemistry in O3-Type Layered Oxide Cathode for Sodium-Ion Batteries,” Energy Storage Materials 38 (2021):130–140.

[50]

F. Ding, C. Zhao, D. Zhou, et al., “A Novel Ni-Rich O3-Na [Ni0.60Fe0.25Mn0.15] O2 Cathode for Na-Ion Batteries,” Energy Storage Materials 30 (2020):420–430.

[51]

C. Deng, E. Gabriel, P. Skinner, et al., “Origins of Irreversibility in Layered NaNixFeyMnz O2 Cathode Materials for Sodium Ion Batteries,” ACS Applied Materials &Interfaces 12, no. 46 (2020):51397–51408.

[52]

N. Yabuuchi, M. Yano, H. Yoshida, S. Kuze, and S. Komaba, “Synthesis and Electrode Performance of O3-Type NaFeO2-NaNi1/2Mn1/2O2 Solid Solution for Rechargeable Sodium Batteries,” Journal of the Electrochemical Society 160, no. 5 (2013): A3131–A3137.

[53]

X. Sun, Y. Jin, C. Y. Zhang, et al., “Na [Ni0.4 Fe0.2 Mn0.4–xTix] O2: A Cathode of High Capacity and Superior Cyclability for Na-Ion Batteries,” Journal of Materials Chemistry A: Materials for Energy and Sustainability 2, no. 41 (2014):17268–17271.

[54]

M. Jeong, H. Lee, J. Yoon, and W. S. Yoon, “O3-Type NaNi1/3Fe1/3Mn1/3O2 Layered Cathode for Na-Ion Batteries: Structural Evolution and Redox Mechanism Upon Na (De) Intercalation,” Journal of Power Sources 439 (2019): 227064.

[55]

B. Zhang, Y. Zhao, M. Li, et al., “Optimizing O3-Type Cathode Materials for Sodium-Ion Batteries: Insights From Precursor-Based Structural Control and Particle Sizing Strategies,” Electrochimica Acta 477 (2024): 143822.

[56]

K.-N. Jung, J. Y. Choi, H. S. Shin, H. T. Huu, W. B. Im, and J. W. Lee, “Mg-Doped Na [Ni1/3Fe1/3Mn1/3] O2 With Enhanced Cycle Stability as a Cathode Material for Sodium-Ion Batteries,” Solid State Sciences 106 (2020): 106334.

[57]

Q. Tao, H. Ding, H. Zhao, J. Huang, B. Dai, and J. Li, “Ca-Doped Na-Site NaNi1/3Fe1/3Mn1/3O2 as a High-Performance Cathode Material for Sodium Ion Batteries,” Journal of Alloys and Compounds 976 (2024): 172977.

[58]

S.-M. Oh, S. T. Myung, J. Y. Hwang, B. Scrosati, K. Amine, and Y. K. Sun, “High Capacity O3-Type Na [Li0.05(Ni0.25Fe0.25Mn0.5)0.95]O2 Cathode for Sodium Ion Batteries,” Chemistry of Materials 26, no. 21 (2014):6165–6171.

[59]

A. Ghosh, R. Hegde, and P. Senguttuvan, “A High Entropy O3-Na1.0Li0.1Ni0.3Fe0.1Mn0.25Ti0.25O2 Cathode With Reversible Phase Transitions and Superior Electrochemical Performances for Sodium-Ion Batteries,” Journal of Materials Chemistry A 12 (2024):14583–14594.

[60]

L. A. Ma, R. Palm, E. Nocerino, et al., “Na-Ion Mobility in P2-type Na 0.5 Mgx Ni0.17–x Mn0.83O2 (0≤x≤0.07) From Electrochemical and Muon Spin Relaxation Studies,” Physical Chemistry Chemical Physics 23, no. 42 (2021):24478–24486.

[61]

N. Tapia-Ruiz, A. R. Armstrong, H. Alptekin, and M. Amores, “2021 Roadmap for Sodium-Ion Batteries,” Journal of Physics: Energy 3, no. 3 (2021): 031503.

[62]

Z.-Y. Li, R. Gao, J. Zhang, X. Zhang, Z. Hu, and X. Liu, “New Insights Into Designing High-Rate Performance Cathode Materials for Sodium Ion Batteries by Enlarging the Slab-Spacing of the Na-Ion Diffusion Layer,” Journal of Materials Chemistry A 4, no. 9 (2016):3453–3461.

[63]

N. Yabuuchi, M. Kajiyama, J. Iwatate, et al., “P2-Type Na(x)[Fe(1/2)Mn(1/2)]O2 Made From Earth-Abundant Elements for Rechargeable Na Batteries,” Nature Materials 11, no. 6 (2012):512–517.

[64]

D. Carlier, J. H. Cheng, R. Berthelot, et al., “The P2-Na2/3Co 2/3Mn1/3O2 Phase: Structure, Physical Properties and Electrochemical Behavior as Positive Electrode in Sodium Battery,” Dalton Transactions 40, no. 36 (2011):9306–9312.

[65]

J. Xu, D. H. Lee, R. J. Clement, et al., “Identifying the Critical Role of Li Substitution in P2–Nax [Liy Niz Mn1–y–z] O2 (0<x, y, z<1) Inter-calation Cathode Materials for High-Energy Na-Ion Batteries,” Chemistry of Materials 26, no. 2 (2014):1260–1269.

[66]

X. Qi, Y. Wang, L. Jiang, et al., “Sodium-Deficient O3-Na0.9 [Ni0.4MnxTi0.6–x] O2 Layered-Oxide Cathode Materials for Sodium-Ion Batteries,” Particle &Particle Systems Characterization 33, no. 8 (2016):538–544.

[67]

D. D. Yuan, Y. X. Wang, Y. L. Cao, X. P. Ai, and H. X. Yang, “Improved Electrochemical Performance of Fe-Substituted NaNi0.5Mn0.5O2 Cathode Materials for Sodium-Ion Batteries,” ACS Applied Materials &Interfaces 7, no. 16 (2015):8585–8591.

[68]

M. Cao, T. Wang, Z. Shadike, K. Nam, Y. Zhou, and Z. Fu, “Reversible Multi-Electron Transfer of Cr2.8+/Cr4.4+in O3-Type Layered Na0.66Fe1/3Cr1/3Ti1/3O2 for Sodium-Ion Batteries,” Journal of the Electrochemical Society 165, no. 3 (2018): A565–A574.

[69]

S. Xu, J. Wu, E. Hu, et al., “Suppressing the Voltage Decay of Low-Cost P2-Type Iron-Based Cathode Materials for Sodium-Ion Batteries,” Journal of Materials Chemistry A 6, no. 42 (2018):20795–20803.

[70]

N. Yabuuchi, M. Kajiyama, J. Iwatate, et al., “P2-Type Nax [Fe1/2Mn1/2] O2 Made From Earth-Abundant Elements for Rechargeable Na Batteries,” Nature Materials 11, no. 6 (2012):512–517.

[71]

E. Talaie, V. Duffort, H. L. Smith, B. Fultz, and L. F. Nazar, “Structure of the High Voltage Phase of Layered P2-Na2/3–z [Mn1/2Fe1/2]O2 and the Positive Effect of Ni Substitution on Its Stability,” Energy &Environmental Science 8, no. 8 (2015):2512–2523.

[72]

S. Kumakura, Y. Tahara, K. Kubota, K. Chihara, and S. Komaba, “Sodium and Manganese Stoichiometry of P2-Type Na2/3MnO2,” Angewandte Chemie International Edition 55, no. 41 (2016):12760–12763.

[73]

K. Kubota, Y. Yoda, and S. Komaba, “Origin of Enhanced Capacity Retention of P2-Type Na2/3Ni1/3-xMn2/3CuxO2 for Na-Ion Batteries,” Journal of the Electrochemical Society 164, no. 12 (2017): A2368–A2373.

[74]

A. Ø. Drejer, M. S. Pedersen, M. Johansen, and D. B. Ravnsbæk, “Local and Global Structures in the Phase Evolution of P2-NaxFey Mn1–yO2 Electrodes for Na-Ion Batteries,” ACS Applied Energy Materials 6, no. 9 (2023):4909–4921.

[75]

N. Sharma, M. H. Han, J. C. Pramudita, E. Gonzalo, H. E. A. Brand, and T. Rojo, “A Comprehensive Picture of the Current Rate Dependence of the Structural Evolution of P2-Na2/3 Fe2/3 Mn1/3 O2,” Journal of Materials Chemistry A 3, no. 42 (2015):21023–21038.

[76]

B. Mortemard de Boisse, D. Carlier, M. Guignard, L. Bourgeois, and C. Delmas, “P2-Nax Mn1/2Fe1/2O2 Phase Used as Positive Electrode in na Batteries: Structural Changes Induced by the Electrochemical (De) Intercalation Process,” Inorganic Chemistry 53, no. 20 (2014):11197–11205.

[77]

W. K. Pang, S. Kalluri, V. K. Peterson, et al., “Interplay Between Electrochemistry and Phase Evolution of the P2-Type Nax (Fe1/2Mn1/2) O2 Cathode for Use in Sodium-Ion Batteries,” Chemistry of Materials 27, no. 8 (2015):3150–3158.

[78]

G. Singh, J. M. López del Amo, M. Galceran, S. Pérez-Villar, and T. Rojo, “Structural Evolution During Sodium Deintercalation/Intercalation in Na2/3 [Fe1/2 Mn1/2] O2,” Journal of Materials Chemistry A 3, no. 13 (2015):6954–6961.

[79]

B. Mortemard de Boisse, D. Carlier, M. Guignard, and C. Delmas, “Structural and Electrochemical Characterizations of P2 and New O3-NaxMn1-yFeyO2 Phases Prepared by Auto-Combustion Synthesis for Na-Ion Batteries,” Journal of the Electrochemical Society 160, no. 4 (2013): A569–A574.

[80]

I. Hasa, D. Buchholz, S. Passerini, B. Scrosati, and J. Hassoun, “High Performance Na0.5 [Ni0.23Fe0.13Mn0.63] O2 Cathode for Sodium-Ion Batteries,” Advanced Energy Materials 4, no. 15 (2014): 1400083.

[81]

Y. You and A. Manthiram, “Progress in High-Voltage Cathode Materials for Rechargeable Sodium-Ion Batteries,” Advanced Energy Materials 8, no. 2 (2018): 1701785.

[82]

R. S. Kate, H. S. Jadhav, U. P. Chothe, et al., “Critical Review of Recent Progress and Challenges of Polyanion Na3V2 (PO4) 3 Cathode Material in Rechargeable Sodium-Ion Batteries,” Journal of Materials Chemistry A 12, no. 13 (2024):7418–7451.

[83]

Y. Liu, W. Li, and Y. Xia, “Recent Progress in Polyanionic Anode Materials for Li (Na)-Ion Batteries,” Electrochemical Energy Reviews 4, no. 3 (2021):447–472.

[84]

P. Barpanda, J. N. Chotard, N. Recham, et al., “Structural, Transport, and Electrochemical Investigation of Novel AMSO4F (A=Na, Li;M=Fe, Co, Ni, Mn) Metal Fluorosulphates Prepared Using Low Temperature Synthesis Routes,” Inorganic Chemistry 49, no. 16 (2010):7401–7413.

[85]

M. Reynaud, P. Barpanda, G. Rousse, et al., “Synthesis and Crystal Chemistry of the NaMSO4F Family (M=Mg, Fe, Co, Cu, Zn),” Solid State Sciences 14, no. 1 (2012):15–20.

[86]

R. Tripathi, T. N. Ramesh, B. L. Ellis, and L. F. Nazar, “Scalable Synthesis of Tavorite LiFeSO4F and NaFeSO4F Cathode Materials,” Angewandte Chemie International Edition 49, no. 46 (2010):8738–8742.

[87]

R. Tripathi, G. R. Gardiner, M. S. Islam, and L. F. Nazar, “Alkali-Ion Conduction Paths in LiFeSO4F and NaFeSO4F Tavorite-Type Cathode Materials,” Chemistry of Materials 23, no. 8 (2011):2278–2284.

[88]

B. C. Melot, G. Rousse, J. N. Chotard, M. C. Kemei, J. Rodríguez-Carvajal, and J. M. Tarascon, “Magnetic Structure and Properties of NaFeSO4F and NaCoSO4F,” Physical Review B 85, no. 9 (2012): 094415.

[89]

N. Recham, J. N. Chotard, L. Dupont, et al., “A 3.6 V Lithium-Based Fluorosulphate Insertion Positive Electrode for Lithium-Ion Batteries,” Nature Materials 9, no. 1 (2010):68–74.

[90]

P. Barpanda, M. Ati, B. C. Melot, et al., “A 3.90 V Iron-Based Fluorosulphate Material for Lithium-Ion Batteries Crystallizing in the Triplite Structure,” Nature Materials 10, no. 10 (2011):772–779.

[91]

G. Rousse and J. M. Tarascon, “Sulfate-Based Polyanionic Compounds for Li-Ion Batteries: Synthesis, Crystal Chemistry, and Electrochemistry Aspects,” Chemistry of Materials 26, no. 1 (2014):394–406.

[92]

J.-M. Tarascon, N. Recham, M. Armand, et al., “Hunting for Better Li-Based Electrode Materials via Low Temperature Inorganic Synthesis,” Chemistry of Materials 22, no. 3 (2010):724–739.

[93]

P. Barpanda, “Pursuit of Sustainable Iron-Based Sodium Battery Cathodes: Two Case Studies,” Chemistry of Materials 28, no. 4 (2016):1006–1011.

[94]

A. Manthiram and J. B. Goodenough, “Lithium Insertion Into Fe2 (SO4)3 Frameworks,” Journal of Power Sources 26, no. 3–4 (1989):403–408.

[95]

P. Barpanda, “Sulfate Chemistry for High-Voltage Insertion Materials: Synthetic, Structural and Electrochemical Insights,” Israel Journal of Chemistry 55, no. 5 (2015):537–557.

[96]

L. Sharma, K. Nakamoto, R. Sakamoto, S. Okada, and P. Barpanda, “Na2FePO4F Fluorophosphate as Positive Insertion Material for Aqueous Sodium-Ion Batteries,” ChemElectroChem 6, no. 2 (2019):444–449.

[97]

H. Wan, R. Ma, X. Liu, et al., “Rare Cobalt-Based Phosphate Nanoribbons With Unique 5-Coordination for Electrocatalytic Water Oxidation,” ACS Energy Letters 3, no. 6 (2018):1254–1260.

[98]

C. Murugesan, S. Lochab, B. Senthilkumar, and P. Barpanda, “Earth-Abundant Alkali Iron Phosphates (AFePO4) as Efficient Electrocatalysts for the Oxygen Reduction Reaction in Alkaline Solution,” ChemCatChem 10, no. 5 (2018):1122–1127.

[99]

T. Wang, D. Su, D. Shanmukaraj, T. Rojo, M. Armand, and G. Wang, “Electrode Materials for Sodium-Ion Batteries: Considerations on Crystal Structures and Sodium Storage Mechanisms,” Electrochemical Energy Reviews 1 (2018):200–237.

[100]

B. Senthilkumar, C. Murugesan, L. Sharma, S. Lochab, and P. Barpanda, “An Overview of Mixed Polyanionic Cathode Materials for Sodium-Ion Batteries,” Small Methods 3, no. 4 (2019): 1800253.

[101]

B. L. Ellis, W. R. M. Makahnouk, Y. Makimura, K. Toghill, and L. F. Nazar, “A Multifunctional 3.5 V Iron-Based Phosphate Cathode for Rechargeable Batteries,” Nature Materials 6, no. 10 (2007):749–753.

[102]

B. L. Ellis, W. R. M. Makahnouk, W. N Rowan-Weetaluktuk, D. H. Ryan, and L. F. Nazar, “Crystal Structure and Electrochemical Properties of A2MPO4F Fluorophosphates (A=Na, Li;M=Fe, Mn, Co, Ni),” Chemistry of Materials 22, no. 3 (2010):1059–1070.

[103]

Y. K. Kabalov, M. Simonov, and N. V. E. Belov, “Crystalline Structure of Basic Iron Ortho-Phosphate, Na_2FePO_4(OH).” Doklady Akademii Nauk (Russian Academy of Sciences, 1974).

[104]

F. Sanz, C. Parada, and C. Ruíz-Valero, “Crystal Growth, Crystal Structure and Magnetic Properties of Disodium Cobalt Fluorophosphate,” Journal of Materials Chemistry 11, no. 1 (2001):208–211.

[105]

A. L. Lipson, S. Kim, B. Pan, C. Liao, T. T. Fister, and B. J. Ingram, “Calcium Intercalation Into Layered Fluorinated Sodium Iron Phosphate,” Journal of Power Sources 369 (2017):133–137.

[106]

N. Recham, J. N. Chotard, L. Dupont, K. Djellab, M. Armand, and J. M. Tarascon, “Ionothermal Synthesis of Sodium-Based Fluorophosphate Cathode Materials,” Journal of the Electrochemical Societyz 156, no. 12 (2009): A993.

[107]

X. Deng, W. Shi, J. Sunarso, M. Liu, and Z. Shao, “A Green Route to a Na2FePO4F-Based Cathode for Sodium Ion Batteries of High Rate and Long Cycling Life,” ACS Applied Materials &Interfaces 9, no. 19 (2017):16280–16287.

[108]

R. Tripathi, S. M. Wood, M. S. Islam, and L. F. Nazar, “Na-Ion Mobility in Layered Na2FePO4F and Olivine Na [Fe, Mn] PO4,” Energy &Environmental Science 6, no. 8 (2013):2257–2264.

[109]

I. V. Tereshchenko, D. A. Aksyonov, O. A. Drozhzhin, et al., “The Role of Semilabile Oxygen Atoms for Intercalation Chemistry of the Metal-Ion Battery Polyanion Cathodes,” Journal of the American Chemical Society 140, no. 11 (2018):3994–4003.

[110]

X. Wu, J. Zheng, Z. Gong, and Y. Yang, “Sol–Gel Synthesis and Electrochemical Properties of Fluorophosphates Na2 Fe1–x Mnx PO4 F/C (x=0, 0.1, 0.3, 0.7, 1) Composite as Cathode Materials for Lithium Ion Battery,” Journal of Materials Chemistry 21, no. 46 (2011):18630–18637.

[111]

F. Cheng, J. Liang, Z. Tao, and J. Chen, “Functional Materials for Rechargeable Batteries,” Advanced Materials 23, no. 15 (2011):1695–1715.

[112]

J.-M. Tarascon, “Key Challenges in Future Li-Battery Research,” Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 368, no. 1923 (2010):3227–3241.

[113]

D. Cui, S. Chen, C. Han, C. Ai, and L. Yuan, “Carbothermal Reduction Synthesis of Carbon Coated Na2FePO4F for Lithium Ion Batteries,” Journal of Power Sources 301 (2016):87–92.

[114]

R. Ling, S. Cai, D. Xie, et al., “Double-Shelled Hollow Na2 FePO4 F/C Spheres Cathode for High-Performance Sodium-Ion Batteries,” Journal of Materials Science 53 (2018):2735–2747.

[115]

D. Jin, H. Qiu, F. Du, Y. Wei, and X. Meng, “Co-Doped Na2FePO4F Fluorophosphates as a Promising Cathode Material for Rechargeable Sodium-Ion Batteries,” Solid State Sciences 93 (2019):62–69.

[116]

P. Barpanda, T. Ye, S. Nishimura, et al., “Sodium Iron Pyrophosphate: A Novel 3.0 V Iron-Based Cathode for Sodium-Ion Batteries,” Electrochemistry Communications 24 (2012):116–119.

[117]

H. Kim, R. A. Shakoor, C. Park, et al., “Na2FeP2O7 as a Promising Iron-Based Pyrophosphate Cathode for Sodium Rechargeable Batteries: A Combined Experimental and Theoretical Study,” Advanced Functional Materials 23, no. 9 (2013):1147–1155.

[118]

J. M. Clark, P. Barpanda, A. Yamada, and M. S. Islam, “Sodium-Ion Battery Cathodes Na2FeP2O7 and Na2MnP2O7: Diffusion Behaviour for High Rate Performance,” Journal of Materials Chemistry A: Materials for Energy and Sustainability 2, no. 30 (2014):11807–11812.

[119]

P. Barpanda, G. Liu, C. D. Ling, et al., “Na2FeP2O7: A Safe Cathode for Rechargeable Sodium-Ion Batteries,” Chemistry of Materials 25, no. 17 (2013):3480–3487.

[120]

X. Chen, K. Du, Y. Lai, et al., “In-Situ Carbon-Coated Na2FeP2O7 Anchored in Three-Dimensional Reduced Graphene Oxide Framework as a Durable and High-Rate Sodium-Ion Battery Cathode,” Journal of Power Sources 357 (2017):164–172.

[121]

L. Zeng, F. Li, X. Xu, et al., “A Scalable Approach to Na2FeP2O7@ Carbon/Expanded Graphite as a Low-Cost and High-Performance Cathode for Sodium-Ion Batteries,” ChemElectroChem 7, no. 18 (2020):3874–3882.

[122]

H. J. Song, D. S. Kim, J. C. Kim, S. H. Hong, and D. W. Kim, “An Approach to Flexible Na-Ion Batteries With Exceptional Rate Capability and Long Lifespan Using Na2 FeP2O7 Nanoparticles on Porous Carbon Cloth,” Journal of Materials Chemistry A 5, no. 11 (2017):5502–5510.

[123]

J.-c Zheng, B.-y. Yang, X.-w. Wang, et al., “Comparative Investigation of Na2FeP2O7 Sodium Insertion Material Synthesized by Using Different Sodium Sources,” ACS Sustainable Chemistry &Engineering 6, no. 4 (2018):4966–4972.

[124]

G. Longoni, J. E. Wang, Y. H. Jung, D. K. Kim, C. M. Mari, and R. Ruffo, “The Na2FeP2O7-Carbon Nanotubes Composite as High Rate Cathode Material for Sodium Ion Batteries,” Journal of Power Sources 302 (2016):61–69.

[125]

M. Priyadarshini, K. Preeti, K. P. Kirubakaran, L. Kumaresan, and K. Vediappan, “Electrochemical Studies on Na2FeP2O7 Pyrophosphate Enhanced With SWCNT as Intercalation Compounds for Na-Ion Batteries: An Insight Into Sensitive Mode Operations,” Materials Letters 284 (2021): 128949.

[126]

K. H. Ha, S. H. Woo, D. Mok, et al., “Na4-αM2+α/2 (P2O7)2 (2/3≤α≤7/8, M=Fe, Fe0.5Mn0.5, Mn): A Promising Sodium Ion Cathode for Na-Ion Batteries,” Advanced Energy Materials 3, no. 6 (2013):770–776.

[127]

Y. Niu, M. Xu, C. Cheng, et al., “Na3.12 Fe2.44 (P2 O7) 2/Multi-walled Carbon Nanotube Composite as a Cathode Material for Sodium-Ion Batteries,” Journal of Materials Chemistry A 3, no. 33 (2015):17224–17229.

[128]

B. Lin, S. Zhang, and C. Deng, “Understanding the Effect of Depressing Surface Moisture Sensitivity on Promoting Sodium Intercalation in Coral-Like Na 3.12 Fe 2.44 (P2 O7) 2/C Synthesized via a Flash-Combustion Strategy,” Journal of Materials Chemistry A 4, no. 7 (2016):2550–2559.

[129]

B. Liu, Y. Zou, S. Chen, et al., “Seaweed-Derived Synthesis of Na3.12Fe2.44 (P2O7) 2/r-GO Aerogels as Air Stable Cathode Materials for Sodium-Ion Batteries,” Chemical Engineering Journal 365 (2019):325–333.

[130]

Y. Niu, M. Xu, B. Shen, C. Dai, and C. M. Li, “Exploration of Na7Fe4.5 (P2 O7)4 as a Cathode Material for Sodium-Ion Batteries,” Journal of Materials Chemistry A 4, no. 42 (2016):16531–16535.

[131]

M. Chen, L. Chen, Z. Hu, et al., “Carbon-Coated Na3.32Fe2.34 (P2O7) 2 Cathode Material for High-Rate and Long-Life Sodium-Ion Batteries,” Advanced Materials 29, no. 21 (2017): 1605535.

[132]

B. Shen, M. Xu, Y. Niu, et al., “Sodium-Rich Ferric Pyrophosphate Cathode for Stationary Room-Temperature Sodium-Ion Batteries,” ACS Applied Materials &Interfaces 10, no. 1 (2018):502–508.

[133]

Y. Niu, M. Xu, S. J. Bao, and C. M. Li, “Porous Graphene to Encapsulate Na6.24Fe4.88 (P2 O7)4 as Composite Cathode Materials for Na-Ion Batteries,” Chemical Communications 51, no. 66 (2015):13120–13122.

[134]

S. Nishimura, M. Nakamura, R. Natsui, and A. Yamada, “New Lithium Iron Pyrophosphate as 3.5 V Class Cathode Material for Lithium Ion Battery,” Journal of the American Chemical Society 132, no. 39 (2010):13596–13597.

[135]

A. K. Padhi, K. S. Nanjundaswamy, and J. B. Goodenough, “Phospho-Olivines as Positive-Electrode Materials for Rechargeable Lithium Batteries,” Journal of the Electrochemical Society 144, no. 4 (1997):1188–1194.

[136]

C. Delacourt, P. Poizot, J. M. Tarascon, and C. Masquelier, “The Existence of a Temperature-Driven Solid Solution in Li x FePO4 for 0≤x≤1,” Nature Materials 4, no. 3 (2005):254–260.

[137]

H. Kim, S. Lee, Y. U. Park, et al., “Neutron and X-Ray Diffraction Study of Pyrophosphate-Based Li2–x MP2O7 (M=Fe, Co) for Lithium Rechargeable Battery Electrodes,” Chemistry of Materials 23, no. 17 (2011):3930–3937.

[138]

A. Nytén, A. Abouimrane, M. Armand, T. Gustafsson, and J. O. Thomas, “Electrochemical Performance of Li2FeSiO4 as a New Li-Battery Cathode Material,” Electrochemistry Communications 7, no. 2 (2005):156–160.

[139]

A. Yamada, N. Iwane, Y. Harada, S. Nishimura, Y. Koyama, and I. Tanaka, “Lithium Iron Borates as High-Capacity Battery Electrodes,” Advanced Materials 22, no. 32 (2010):3583–3587.

[140]

D.-H. Seo, Y. U. Park, S. W. Kim, I. Park, R. A. Shakoor, and K. Kang, “First-Principles Study on Lithium Metal Borate Cathodes for Lithium Rechargeable Batteries,” Physical Review B 83, no. 20 (2011): 205127.

[141]

H. Kim, I. Park, D. H. Seo, et al., “New Iron-Based Mixed-Polyanion Cathodes for Lithium and Sodium Rechargeable Batteries: Combined First Principles Calculations and Experimental Study,” Journal of the American Chemical Society 134, no. 25 (2012):10369–10372.

[142]

X. Ma, X. Wu, and P. Shen, “Rational Design of Na4Fe3 (PO4)2 (P2O7) Nanoparticles Embedded in Graphene: Toward Fast Sodium Storage Through the Pseudocapacitive Effect,” ACS Applied Energy Materials 1, no. 11 (2018):6268–6278.

[143]

A. Zhao, T. Yuan, P. Li, et al., “A Novel Fe-Defect Induced Pure-Phase Na4Fe2.91 (PO4) 2P2O7 Cathode Material With High Capacity and Ultra-Long Lifetime for Low-Cost Sodium-Ion Batteries,” Nano Energy 91 (2022): 106680.

[144]

T. Yuan, Y. Wang, J. Zhang, et al., “3D Graphene Decorated Na4Fe3 (PO4)2 (P2O7) Microspheres as Low-Cost and High-Performance Cathode Materials for Sodium-Ion Batteries,” Nano Energy 56 (2019):160–168.

[145]

X. Pu, H. Wang, T. Yuan, et al., “Na4Fe3 (PO4)2P2O7/C Nanospheres as Low-Cost, High-Performance Cathode Material for Sodium-Ion Batteries,” Energy Storage Materials 22 (2019):330–336.

[146]

H. Ben Yahia, R. Essehli, R. Amin, K. Boulahya, T. Okumura, and I. Belharouak, “Sodium Intercalation in the Phosphosulfate Cathode NaFe2 (PO4)(SO4)2,” Journal of Power Sources 382 (2018):144–151.

[147]

K. Shiva, P. Singh, W. Zhou, and J. B. Goodenough, “NaFe2 PO4 (SO4)2: A Potential Cathode for a Na-Ion Battery,” Energy &Environmental Science 9, no. 10 (2016):3103–3106.

[148]

S.-F. Li, Z.-Y. Gu, J.-Z. Guo, et al., “Enhanced Electrode Kinetics and Electrochemical Properties of Low-Cost NaFe2PO4 (SO4)2 via Ca2+Doping as Cathode Material for Sodium-Ion Batteries,” Journal of Materials Science &Technology 78 (2021):176–182.

[149]

S. D. Pinjari, R. C. Dutta, S. Chen, et al., “Site-Selective Mg-Doping Regulated Charge Storage in NaFe2PO4 (SO4)2 for High Energy Sodium-Ion Batteries,” Chemical Engineering Journal 493 (2024): 152485.

[150]

J. Wang, Y. F. Zhu, Y. Su, et al., “Routes to High-Performance Layered Oxide Cathodes for Sodium-Ion Batteries,” Chemical Society Reviews 53 (2024):4230–4301.

[151]

M. H. Han, E. Gonzalo, G. Singh, and T. Rojo, “A Comprehensive Review of Sodium Layered Oxides: Powerful Cathodes for Na-Ion Batteries,” Energy &Environmental Science 8, no. 1 (2015):81–102.

[152]

H. Yang, D. Wang, Y. Liu et al., “Improvement of Cycle Life for Layered Oxide Cathodes in Sodium-Ion Batteries,” Energy &Environmental Science 17, no. 5 (2024):1756–1780.

[153]

Y. Fang, J. Zhang, L. Xiao, X. Ai, Y. Cao, and H. Yang, “Phosphate Framework Electrode Materials for Sodium Ion Batteries,” Advanced Science 4, no. 5 (2017): 1600392.

[154]

K. Itaya, I. Uchida, and V. D. Neff, “Electrochemistry of Polynuclear Transition Metal Cyanides: Prussian Blue and Its Analogues,” Accounts of Chemical Research 19, no. 6 (1986):162–168.

[155]

F. Ma, Q. Li, T. Wang, H. Zhang, and G. Wu, “Energy Storage Materials Derived From Prussian Blue Analogues,” Science Bulletin 62, no. 5 (2017):358–368.

[156]

L. Wang, Y. Lu, J. Liu, et al., “A Superior Low-Cost Cathode for a Na-Ion Battery,” Angewandte Chemie 125, no. 7 (2013):2018–2021.

[157]

C. Li, R. Zang, P. Li, et al., “High Crystalline Prussian White Nanocubes as a Promising Cathode for Sodium-Ion Batteries,” Chemistry–An Asian Journal 13, no. 3 (2018):342–349.

[158]

D. Baster, Ł. Kondracki, E. Oveisi, S. Trabesinger, and H. H. Girault, “Prussian Blue Analogue—Sodium–Vanadium Hexacyanoferrate as a Cathode Material for Na-Ion Batteries,” ACS Applied Energy Materials 4, no. 9 (2021):9758–9765.

[159]

C. Q. X. Lim and Z.-K. Tan, “Prussian White With Near-Maximum Specific Capacity in Sodium-Ion Batteries,” ACS Applied Energy Materials 4, no. 6 (2021):6214–6220.

[160]

C. Q. X Lim, T. Wang, E. W. Y. Ong, and Z. K. Tan, “High-Capacity Sodium–Prussian Blue Rechargeable Battery Through Chelation-Induced Nano-Porosity,” Advanced Materials Interfaces 7, no. 21 (2020): 2000853.

[161]

X. Wu, C. Wu, C. Wei, et al., “Highly Crystallized Na2CoFe(CN)6 With Suppressed Lattice Defects as Superior Cathode Material for Sodium-Ion Batteries,” ACS Applied Materials &Interfaces 8, no. 8 (2016):5393–5399.

[162]

B. Wang, Y. Han, X. Wang, et al., “Prussian Blue Analogs for Rechargeable Batteries,” Iscience 3 (2018):110–133.

[163]

X. Wu, W. Deng, J. Qian, Y. Cao, X. Ai, and H. Yang, “Single-Crystal FeFe (CN) 6 Nanoparticles: A High Capacity and High Rate Cathode for Na-Ion Batteries,” Journal of Materials Chemistry A 1, no. 35 (2013):10130–10134.

[164]

T. P. Nguyen and I. T. Kim, “Iron-Vanadium Incorporated Ferrocyanides as Potential Cathode Materials for Application in Sodium-Ion Batteries,” Micromachines 14, no. 3 (2023): 521.

[165]

Y. You, X.-L. Wu, Y.-X. Yin, and Y.-G. Guo, “High-Quality Prussian Blue Crystals as Superior Cathode Materials for Room-Temperature Sodium-Ion Batteries,” Energy &Environmental Science 7, no. 5 (2014):1643–1647.

[166]

L. Xu, H. Li, T. Du, et al., “An All Prussian Blue Analog-Based Aprotic Sodium-Ion Battery,” Battery Energy 1, no. 2 (2022): 20210003.

[167]

J. Lee, W. Jeong, J. Baek, et al., “A Moisture-Controlled Prussian White/Cnt Composite High Energy Cathode for Next-Generation Sodium-Ion Batteries,” Journal of Materials Chemistry A 11, no. 46 (2023):25724–25733.

[168]

Y. Luo, J. Peng, S. Yin, L. Xue, and Y. Yan, “Acid-Assisted Ball Mill Synthesis of Carboxyl-Functional-Group-Modified Prussian Blue as Sodium-Ion Battery Cathode,” Nanomaterials 12, no. 8 (2022): 1290.

[169]

C. Gao, M. Chen, J. Li, et al., “Unveil the Role of Structural Vacancy in Mn-Based Prussian Blue for Energy Storage Application,” Energy &Environmental Science 17, no. 23 (2024):9278–9287.

[170]

W. Ren, Z. Zhu, M. Qin, et al., “Prussian White Hierarchical Nanotubes With Surface-Controlled Charge Storage for Sodium-Ion Batteries,” Advanced Functional Materials 29, no. 15 (2019): 1806405.

[171]

Z. Zhang, M. Avdeev, H. Chen, W. Yin, W. H. Kan, and G. He, “Lithiated Prussian Blue Analogues as Positive Electrode Active Materials for Stable Non-Aqueous Lithium-Ion Batteries,” Nature Communications 13, no. 1 (2022): 7790.

[172]

B. F. Baggio, C. Vicente, S. Pelegrini, et al., “Morphology and Structure of Electrodeposited Prussian Blue and Prussian White Thin Films,” Materials 12, no. 7 (2019): 1103.

[173]

L. Wang, J. Song, R. Qiao, et al., “Rhombohedral Prussian White as Cathode for Rechargeable Sodium-Ion Batteries,” Journal of the American Chemical Society 137, no. 7 (2015):2548–2554.

[174]

H.-W. Lee, R. Y. Wang, M. Pasta, S. Woo Lee, N. Liu, and Y. Cui, “Manganese Hexacyanomanganate Open Framework as a High-Capacity Positive Electrode Material for Sodium-Ion Batteries,” Nature Communications 5, no. 1 (2014): 5280.

[175]

Y. Xiao, J. Xiao, H. Zhao, et al., “Prussian Blue Analogues for Sodium-Ion Battery Cathodes: A Review of Mechanistic Insights, Current Challenges, and Future Pathways,” Small 20 (2024): 2401957.

[176]

Y. Lu, L. Wang, J. Cheng, and J. B. Goodenough, “Prussian Blue: A New Framework of Electrode Materials for Sodium Batteries,” Chemical Communications 48, no. 52 (2012):6544–6546.

[177]

L. Ma, H. Cui, S. Chen, X. Li, B. Dong, and C. Zhi, “Accommodating Diverse Ions in Prussian Blue Analogs Frameworks for Rechargeable Batteries: The Electrochemical Redox Reactions,” Nano Energy 81 (2021): 105632.

[178]

J. Peng, J. Wang, H. Yi, et al., “A Dual-Insertion Type Sodium-Ion Full Cell Based on High-Quality Ternary-Metal Prussian Blue Analogs,” Advanced Energy Materials 8, no. 11 (2018): 1702856.

[179]

R. Chen, Y. Huang, M. Xie, et al., “Preparation of Prussian Blue Submicron Particles With a Pore Structure by Two-Step Optimization for Na-Ion Battery Cathodes,” ACS Applied Materials &Interfaces 8, no. 25 (2016):16078–16086.

[180]

J. Qian, M. Zhou, Y. Cao, X. Ai, and H. Yang, “Nanosized Na4Fe(CN)6/C Composite as a Low-Cost and High-Rate Cathode Material for Sodium-Ion Batteries,” Advanced Energy Materials 2 (2012):410–414.

[181]

W.-J. Li, S. L. Chou, J. Z. Wang, et al., “Facile Method to Synthesize Na-Enriched Na1+x FeFe (CN)6 Frameworks as Cathode With Superior Electrochemical Performance for Sodium-Ion Batteries,” Chemistry of Materials 27, no. 6 (2015):1997–2003.

[182]

Y. Yang, E. Liu, X. Yan, et al., “Influence of Structural Imperfection on Electrochemical Behavior of Prussian Blue Cathode Materials for Sodium Ion Batteries,” Journal of the Electrochemical Society 163, no. 9 (2016): A2117–A2123.

[183]

X. Wang, H. Li, W. Zhang, et al., “Unlocking Fast and Highly Reversible Sodium Storage in Fe-Based Mixed Polyanion Cathodes for Low-Cost and High-Performance Sodium-Ion Batteries,” Journal of Materials Chemistry A 11, no. 13 (2023):6978–6985.

[184]

J. Peng, J. Huang, Y. Gao, et al., “Defect-Healing Induced Monoclinic Iron-Based Prussian Blue Analogs as High-Performance Cathode Materials for Sodium-Ion Batteries,” Small 19, no. 36 (2023): 2300435.

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