Water-facilitated targeted repair of degraded cathodes for sustainable lithium-ion batteries

Jiao Lin , Xiaodong Zhang , Zhujie Li , Ersha Fan , Xiaowei Lv , Renjie Chen , Feng Wu , Li Li

SusMat ›› 2024, Vol. 4 ›› Issue (2) : e194

PDF
SusMat ›› 2024, Vol. 4 ›› Issue (2) : e194 DOI: 10.1002/sus2.194
RESEARCH ARTICLE

Water-facilitated targeted repair of degraded cathodes for sustainable lithium-ion batteries

Author information +
History +
PDF

Abstract

Directly repairing end-of-life lithium-ion battery cathodes poses significant challenges due to the diverse compositions of the wastes. Here, we propose a water-facilitated targeted repair strategy applicable to various end-of-life batches and cathodes. The process involves initiating structural repair and reconstructing particle morphology in degraded LiMn2O4 (LMO) through an additional thermal drive post-ambient water remanganization, achieving elemental repair. Compared to solid-phase repair, the resulting LMO material exhibits superior electrochemical and kinetic characteristics. The theoretical analysis highlights the impact of Mn defects on the structural stability and electron transfer rate of degraded materials. The propensity of Mn ions to diffuse within the Mn layer, specifically occupying the Mn 16d site instead of the Li 8a site, theoretically supports the feasibility of ambient water remanganization. Moreover, this method proves effective in the relithiation of degraded layered cathode materials, yielding single crystals. By combining low energy consumption, environmental friendliness, and recyclability, our study proposes a sustainable approach to utilizing spent batteries. This strategy holds the potential to enable the industrial direct repair of deteriorated cathode materials.

Keywords

direct repair / lithium-ion batteries / water-facilitated

Cite this article

Download citation ▾
Jiao Lin, Xiaodong Zhang, Zhujie Li, Ersha Fan, Xiaowei Lv, Renjie Chen, Feng Wu, Li Li. Water-facilitated targeted repair of degraded cathodes for sustainable lithium-ion batteries. SusMat, 2024, 4(2): e194 DOI:10.1002/sus2.194

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Harper G, Sommerville R, Kendrick E, et al. Recycling lithium-ion batteries from electric vehicles. Nature. 2019;575(7781):75-86.

[2]

Neumann J, Petranikova M, Meeus M, et al. Recycling of lithium-ion batteries—current state of the art, circular economy, and next generation recycling. Adv Energy Mater. 2022;12(17):2102917.

[3]

Ciez RE, Whitacre JF. Examining different recycling processes for lithium-ion batteries. Nat Sustain. 2019;2(2):148-156.

[4]

Bieker G. A global comparison of the life-cycle greenhouse gas emissions of combustion engine and electric passenger car. The International Council on Clean Transportation. 2021. Accessed September 30, 2023. Available from:

[5]

Li L, Ge J, Chen R, Wu F, Chen S, Zhang X. Environmental friendly leaching reagent for cobalt and lithium recovery from spent lithium-ion batteries. Waste Manage. 2010;30(12):2615-2621.

[6]

Do MP, Lim HK, Tan CK, Tang EJJ, Srinivasan M, Tay CY. Fruit waste-derived lixiviant: a viable green chemical for lithium-ion battery recycling. J Cleaner Prod. 2023;420:138303.

[7]

Xu J, Jin Y, Liu K, et al. A green and sustainable strategy toward lithium resources recycling from spent batteries. Sci Adv. 2022;8(40):eabq7948.

[8]

Lai Y, Zhu X, Xu M, et al. Recycling of spent LiFePO4 batteries by oxidizing roasting: kinetic analysis and thermal conversion mechanism. J Environ Chem Eng. 2023;11(5):110799.

[9]

Hanada T, Goto M. Cathode recycling of lithium-ion batteries based on reusable hydrophobic eutectic solvents. Green Chem. 2022;24(13):5107-5115.

[10]

Wang H, Burke S, Yuan R, Whitacre JF. Effective direct recycling of inhomogeneously aged Li-ion battery cathode active materials. J Energy Storage. 2023;60:106616.

[11]

Wu J, Zheng M, Liu T, et al. Direct recovery: a sustainable recycling technology for spent lithium-ion battery. Energy Storage Mater. 2022;5:1012-1036.

[12]

Xu P, Dai Q, Gao H, et al. Efficient direct recycling of lithium-ion battery cathodes by targeted healing. Joule. 2020;4(12):2609-2626.

[13]

Lin J, Chen X, Fan E, et al. A green repair pathway for spent spinel cathode material: coupled mechanochemistry and solid-phase reactions. eScience. 2023;3(3):100110.

[14]

Ma X, Hou J, Vanaphuti P, et al. Direct upcycling of mixed Ni-lean polycrystals to single-crystal Ni-rich cathode materials. Chem. 2022;8(7):1944-1955.

[15]

Nie H, Xu L, Song D, et al. LiCoO2: recycling from spent batteries and regeneration with solid state synthesis. Green Chem. 2015;17(2):1276-1280.

[16]

Jiang G, Zhang Y, Meng Q, et al. Direct regeneration of LiNi0.5Co0.2Mn0.3O2 cathode from spent lithium-ion batteries by the molten salts method. ACS Sustain Chem Eng. 2020;8(49):18138-18147.

[17]

Shi Y, Chen G, Liu F, Yue X, Chen Z. Resolving the compositional and structural defects of degraded LiNixCoyMnzO2 particles to directly regenerate high-performance lithium-ion battery cathodes. ACS Energy Lett. 2018;3(7):1683-1692.

[18]

Chi Z, Li J, Wang L, et al. Direct regeneration method of spent LiNi1/3Co1/3Mn1/3O2 cathode materials via surface lithium residues. Green Chem. 2021;23(22):9099-9108.

[19]

Song X, Hu T, Liang C, et al. Direct regeneration of cathode materials from spent lithium iron phosphate batteries using a solid phase sintering method. RSC Adv. 2017;7(8):4783-4790.

[20]

Chen X, Feng Y, Zhang S, Kou W, Ji H, Yang G. Comparison study on regeneration of spent ternary materials by molten salt solid-liquid method and traditional solid-solid method. J Alloy Compd. 2022;900:163308.

[21]

Qin Z, Wen Z, Xu Y, et al. Ternary molten salt approach for direct regeneration of LiNi0.5Co0.2Mn0.3O2 cathode. Small. 2022(43):e2106719.

[22]

Chen M, Ma X, Chen B, et al. Recycling end-of-life electric vehicle lithium-ion batteries. Joule. 2019;3(11):2622-2646.

[23]

Gao H, Yan Q, Xu P, et al. Efficient direct recycling of degraded LiMn2O4 cathodes by one-step hydrothermal relithiation. ACS Appl Mater Inter. 2020;12(46):51546-51554.

[24]

Chan KH, Malik M, Azimi G. Direct recycling of degraded lithium-ion batteries of an electric vehicle using hydrothermal relithiation. Mater Today Energy. 2023;37:101374.

[25]

Liao H, Zhao S, Cai M, Dong Y, Huang F. Direct conversion of waste battery cathodes to high-volumetric-capacity anodes with assembled secondary-particle morphology. Adv Energy Mater. 2023;13(22):2300596.

[26]

Lin J, Fan E, Zhang X, et al. Sustainable upcycling of spent lithium-ion batteries cathode materials: stabilization by in situ Li/Mn disorder. Adv Energy Mater. 2022(26):2201174.

[27]

Biesinger MC, Payne BP, Grosvenor AP, et al. Resolving surface chemical states in XPS analysis of first row transition metals, oxides and hydroxides: Cr, Mn, Fe, Co and Ni. Appl Surf Sci. 2011;257(7):2717-2730.

[28]

Zhan F, Wang AC, Xu L, et al. Electron transfer as a liquid droplet contacting a polymer surface. ACS Nano. 2020;14(12):17565-17573.

[29]

Kanamura K, Naito H, Yao T, Takehara ZI. Structural change of the LiMn2O4 spinel structure induced by extraction of lithium. J Mater Chem. 1996;6(1):33-36.

[30]

Dunn B, Kamath H, Tarascon JM. Electrical energy storage for the grid: a battery of choices. Science. 2011;334(6058):928-935.

[31]

Jung SK, Kim H, Cho MG, et al. Lithium-free transition metal monoxides for positive electrodes in lithium-ion batteries. Nat Energy. 2017;2(2):16208.

[32]

Hong C, Leng Q, Zhu J, et al. Revealing the correlation between structural evolution and Li+ diffusion kinetics of nickel-rich cathode materials in Li-ion batteries. J Mat Chem A. 2020;8(17):8540-8547.

[33]

Zhang N, Sun C, Huang Y, et al. Low-cost batteries based on industrial waste Al-Si microparticles and LiFePO4 for stationary energy storage. Dalton T. 2021;50(24):8322-8329.

[34]

Huang Y, Dong Y, Li S, et al. Lithium manganese spinel cathodes for lithium-ion batteries. Adv Energy Mater. 2021;11(2):2000997.

[35]

Shi Y, Zhang M, Meng YS, Chen Z. Ambient-pressure relithiation of degraded LixNi0.5Co0.2Mn0.3O2(0 <x< 1) via eutectic solutions for direct regeneration of lithium-ion battery cathodes. Adv Energy Mater. 2019;9(20):1900454.

[36]

Wang J, Jia K, Ma J, et al. Sustainable upcycling of spent LiCoO2 to an ultra-stable battery cathode at high voltage. Nat Sustain. 2023;6(7):797-805.

[37]

Kresse G, Furthmüller J. Efficiency of ab-initio total energy calculations for metals and semiconductors using a plane-wave basis set—ScienceDirect. Comp Mater Sci. 1996;6(1):15-50.

[38]

Blochl PE. Projector augmented-wave method. Phys Rev B Condens Matter. 1994;50(24):17953-17979.

[39]

Perdew JP, Chevary JA, Vosko SH, et al. Erratum: atoms, molecules, solids, and surfaces: applications of the generalized gradient approximation for exchange and correlation. Phys Rev B Condens Matter. 1993;46(11):6671-6687.

[40]

Perdew JP, Burke K, Ernzerhof M. Generalized gradient approximation made simple. Phys Rev Lett. 1998;77(18):3865-3868.

[41]

Jain A, Ong SP, Hautier G. Commentary: the materials project: a materials genome approach to accelerating materials innovation. APL materials. 2013;1(1):011002.

[42]

Henkelman G, Jónsson H. Improved tangent estimate in the nudged elastic band method for finding minimum energy paths and saddle points. J Chem Phy. 2000;113(22):9978-9985.

[43]

Henkelman G, Uberuaga BP, Jónsson H. A climbing image nudged elastic band method for finding saddle points and minimum energy paths. J Chem Phy. 2000;113(22):9901-9904.

[44]

Sheppard D, Terrell R, Henkelman G. Optimization methods for finding minimum energy paths. J Chem Phy. 2008;128(13):134106.

[45]

Sheppard D, Henkelman G. Paths to which the nudged elastic band converges. J Comput Chem. 2011;32(8):1769-1771.

RIGHTS & PERMISSIONS

2024 The Authors. SusMat published by Sichuan University and John Wiley & Sons Australia, Ltd.

AI Summary AI Mindmap
PDF

255

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/