Page 109 - Read Online
P. 109
Page 16 of 18 Yang et al. Energy Mater 2023;3:300029 https://dx.doi.org/10.20517/energymater.2023.10
11. Yin S, Deng W, Chen J, et al. Fundamental and solutions of microcrack in Ni-rich layered oxide cathode materials of lithium-ion
batteries. Nano Energy 2021;83:105854. DOI
12. Yan P, Zheng J, Liu J, et al. Tailoring grain boundary structures and chemistry of Ni-rich layered cathodes for enhanced cycle stability
of lithium-ion batteries. Nat Energy 2018;3:600-5. DOI
13. Gao Y, Wang X, Geng J, Liang F, Chen M, Zou Z. Research progress on the failure mechanisms and modifications of Ni-rich ternary
layered oxide cathode materials for lithium-ion batteries. J Electron Mater 2023;52:72-95. DOI
14. de Biasi L, Schwarz B, Brezesinski T, Hartmann P, Janek J, Ehrenberg H. Chemical, structural, and electronic aspects of formation
and degradation behavior on different length scales of Ni-rich NCM and Li-rich HE-NCM cathode materials in Li-ion Batteries. Adv
Mater 2019;31:e1900985. DOI PubMed
15. Geldasa FT, Kebede MA, Shura MW, Hone FG. Identifying surface degradation, mechanical failure, and thermal instability
phenomena of high energy density Ni-rich NCM cathode materials for lithium-ion batteries: a review. RSC Adv 2022;12:5891-909.
DOI PubMed PMC
16. Li S, Yao Z, Zheng J, et al. Direct observation of defect-aided structural evolution in a nickel-rich layered cathode. Angew Chem Int
Ed 2020;59:22092-9. DOI
17. Sun J, Cao X, Zhou H. Advanced single-crystal layered Ni-rich cathode materials for next-generation high-energy-density and long-
life Li-ion batteries. Phys Rev Mater 2022;6:070201. DOI
18. Wang X, Ruan X, Du CF, Yu H. Developments in surface/interface engineering of Ni-rich layered cathode materials. Chem Rec
2022;22:e202200119. DOI PubMed
19. Niu C, Liu D, Lochala JA, et al. Balancing interfacial reactions to achieve long cycle life in high-energy lithium metal batteries. Nat
Energy 2021;6:723-32. DOI
20. Yoon M, Dong Y, Hwang J, et al. Reactive boride infusion stabilizes Ni-rich cathodes for lithium-ion batteries. Nat Energy
2021;6:362-71. DOI
21. Ryu H, Park K, Yoon CS, Sun Y. Capacity fading of Ni-rich Li[Ni Co Mn x ]O (0.6 ≤ x ≤ 0.95) cathodes for high-energy-density
y
1- -y
2
x
lithium-ion batteries: bulk or surface degradation? Chem Mater 2018;30:1155-63. DOI
22. Zhang C, Wan J, Li Y, et al. Restraining the polarization increase of Ni-rich and low-Co cathodes upon cycling by Al-doping. J Mater
Chem A 2020;8:6893-901. DOI
−1
23. Zhu Z, Yu D, Shi Z, et al. Gradient-morph LiCoO single crystals with stabilized energy density above 3400 Wh L . Energy Environ
2
Sci 2020;13:1865-78. DOI
24. Wang Y, Zhang Q, Xue Z, et al. An in situ formed surface coating layer enabling LiCoO with stable 4.6 V high-voltage cycle
2
performances. Adv Energy Mater 2020;10:2001413. DOI
25. Wang X, Wu Q, Li S, et al. Lithium-aluminum-phosphate coating enables stable 4.6 V cycling performance of LiCoO at room
2
temperature and beyond. Energy Stor Mater 2021;37:67-76. DOI
26. Yang X, Wang C, Yan P, et al. Pushing lithium cobalt oxides to 4.7 V by lattice-matched interfacial engineering. Energy Stor Mater
2022;12:2200197. DOI
27. Wang L, Liu T, Wu T, Lu J. Strain-retardant coherent perovskite phase stabilized Ni-rich cathode. Nature 2022;611:61-7. DOI
28. Li J, Zhou Z, Luo Z, et al. Microcrack generation and modification of Ni-rich cathodes for Li-ion batteries: a review. Sustain Mater
Technol 2021;29:e00305. DOI
29. Liang L, Zhang W, Zhao F, et al. Surface/interface structure degradation of Ni-Rich layered oxide cathodes toward lithium-ion
batteries: fundamental mechanisms and remedying strategies. Adv Mater Interfaces 2020;7:1901749. DOI
30. Zhang C, Jiang W, He W, Wei W. Heteroepitaxial interface of layered cathode materials for lithium ion batteries. Energy Stor Mater
2021;37:161-89. DOI
31. Zhang J, Li Q, Ouyang C, et al. Trace doping of multiple elements enables stable battery cycling of LiCoO at 4.6 V. Nat Energy
2
2019;4:594-603. DOI
32. Zhu Z, Wang H, Li Y, et al. A surface Se-substituted LiCo[O Se ] cathode with ultrastable high-voltage cycling in pouch full-cells.
2-δ δ
Adv Mater 2020;32:e2005182. DOI
33. Wang L, Ma J, Wang C, et al. A novel bifunctional self-stabilized strategy enabling 4.6 V LiCoO with excellent long-term cyclability
2
and high-rate capability. Adv Sci 2019;6:1900355. DOI PubMed PMC
34. Jiang M, Danilov DL, Eichel R, Notten PHL. A review of degradation mechanisms and recent achievements for Ni-rich cathode-based
Li-ion batteries. Adv Energy Mater 2021;11:2103005. DOI
35. Liu J, Wang J, Ni Y, Zhang K, Cheng F, Chen J. Recent breakthroughs and perspectives of high-energy layered oxide cathode
materials for lithium ion batteries. Mater Today 2021;43:132-65. DOI
36. Ni L, Zhang S, Di A, et al. Challenges and strategies towards single-crystalline Ni-rich layered cathodes. Adv Energy Mater
2022;12:2201510. DOI
37. Wang X, Ding Y, Deng Y, Chen Z. Ni-rich/Co-poor layered cathode for automotive Li-ion batteries: promises and challenges. Adv
Energy Mater 2020;10:1903864. DOI
38. Chen H, Pei A, Wan J, et al. Tortuosity effects in lithium-metal host anodes. Joule 2020;4:938-52. DOI
39. Liu W, Lin D, Pei A, Cui Y. Stabilizing lithium metal anodes by uniform Li-ion flux distribution in nanochannel confinement. J Am
Chem Soc 2016;138:15443-50. DOI PubMed
40. Jie Y, Ren X, Cao R, Cai W, Jiao S. Advanced liquid electrolytes for rechargeable Li metal batteries. Adv Funct Mater

