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Advanced single-crystal layered Ni-rich cathode materials for next-generation high-energy-density and long-life Li-ion batteries
Phys. Rev. Materials 6, 070201 – Published 13 July, 2022
DOI: https://doi.org/10.1103/PhysRevMaterials.6.070201
Abstract
Benefiting from the high specific capacity and output voltage, Ni-rich layered oxides are one of the most promising commercial cathodes for next-generation high-energy-density Li-ion batteries (LIBs). However, typical Ni-rich cathode materials generally inherit polycrystal (PC) morphology from their precursors, which induces severe crack generations and side reactions, resulting in the rapid decay of structural and electrochemical stability upon cycling. In contrast, the Ni-rich cathodes with single-crystal (SC) morphology display remarkable structural stability and long cycle life by means of superior mechanical strength and limited side reactions, which is expected to solve the instinctive problems of PC counterparts. Herein, the synthesis strategies and the growth mechanisms of SC Ni-rich oxides are introduced and summarized in detail. Moreover, the significant differences in electrochemical behaviors between PC and SC cathodes are comprehensively compared in various voltage windows. Furthermore, the corresponding structural evolutions and morphology changes are also systematically investigated and analyzed. Additionally, the state-of-the-art characterization techniques for SC materials are elaborated. Altogether, in this review, we not only unravel the fundamental understandings of SC Ni-rich cathode materials but also provide an effective guide for realizing high-energy-density LIBs with long cycle life.
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References (74)
- J. B. Goodenough and K. S. Park, The Li-ion rechargeable battery: A perspective, J. Am. Chem. Soc. 135, 1167 (2013).
- K. Wang, B. Xue, Y. Tan, J. Sun, Q. Li, S. Shi, and Li P, Recycling of micron-sized Si powder waste from diamond wire cutting and its application in Li-ion battery anodes, J. Clean. Prod. 239, 117997 (2019).
- Y. Tang, Y. Zhang, X. Rui, D. Qi, Y. Luo, W. Leow, S. Chen, J. Guo, J. Wei, W. Li et al., Conductive inks based on a lithium titanate nanotube gel for high rate lithium-ion batteries with customized configuration, Adv. Mater. 28, 1567 (2016).
- B. Li, J. Zheng, H. Zhang, L. Jin, D. Yang, H. Lv, C. Shen, A. Shellikeri, Y. Zheng, R. Gong et al., Electrode materials, electrolytes, and challenges in nonaqueous lithium-ion capacitors, Adv. Mater. 30, 1705670 (2018).
- S. Xia, X. Wu, Z. Zhang, Y. Cui, and W. Liu, Practical challenges and future perspectives of all-solid-state lithium-metal batteries, Chem. 5, 753 (2019).
- P. Yan, J. Zheng, J. Liu, B. Wang, and X. Cheng, Tailoring grain boundary structures and chemistry of Ni-rich layered cathodes for enhanced cycle stability of lithium-ion batteries, Nat. Energy 3, 600 (2018).
- W. Liu, P. Oh, X. Liu, M. Lee, W. Cho, S. Chae, Y. Kim, and J. Cho, Nickel-rich layered lithium transitional-metal oxide for high-energy lithium-ion batteries, Angew. Chem. Int. Ed. 54, 4440 (2015).
- A. Manthiram, B. Song, and W. Li, A perspective on nickel-rich layered oxide cathodes for lithium-ion batteries, Energy Stor. Mater. 6, 125 (2017).
- C. S. Yoon, K. J. Park, U. H. Kim, K. H. Kang, H. H. Ryu, and Y. K. Sun, High-energy Ni-rich cathodes via compositional partitioning for next–generation electric vehicles, Chem. Mater. 29, 10436 (2017).
- K. J. Park, J. Y. Hwang, H. H. Ryu, F. Maglia, S. J. Kim, P. Lamp, C. S. Yoon, and Y. K. Sun, Degradation mechanism of Ni-enriched NCA cathode for lithium batteries: Are microcracks really critical? ACS Energy Lett. 4, 1394 (2019).
- J. Li, H. Li, W. Stone, R. Weber, S. Hy, and J. Dahn, Synthesis of single crystal for lithium ion batteries, J. Electrochem. Soc. 164, A3529 (2017).
- W. Li, H. Asl, Q. Xie, and A. Manthiram, Collapse of lattice at deep charge irrespective of nickel content in lithium-ion batteries, J. Am. Chem. Soc. 141, 5097 (2019).
- Q. Ran, H. Zhao, Q. Wang, X. Shu, Y. Hu, S. Hao, M. Wang, J. Liu, M. Zhang, and H. Li, Dual functions of gradient phosphate polyanion doping on improving the electrochemical performance of Ni-rich cathode at high cut-off voltage and high temperature, Electrochim. Acta. 299, 971 (2019).
- Y. Huang, Y. Huang, and X. Hu, Enhanced electrochemical performance of by nanoscale surface modification with , Electrochim. Acta 231, 294 (2017).
- Z. Chen, Y. Liu, Z. Lu, R. Hu, J. Cui, H. Xu, Y. Ouyang, Y. Zhang, and M. Zhu, Plasma-assisted coating of nanosized on cathodes for enhanced cyclic stability of lithium-ion batteries, J. Alloys Compd. 803, 71 (2019).
- W. Tang, Z. Chen, F. Xiong, F. Chen, C. Huang, Q. Gao, T. Wang, Z. Yang, and W. Zhang, An effective etching-induced coating strategy to shield electrode materials by , J. Power Sources 412, 246 (2019).
- J. Chen, L. Zhu, D. Jia, X. Jiang, Y. Wu, Q. Hao, X. Xia, Y. Ouyang, L. Peng, and W. Tang, cathodes exhibiting improved capacity retention and thermal stability due to a lithium iron phosphate coating, Electrochim. Acta. 312, 179 (2019).
- X. Zeng, T. Jian, Y. Lu, L. Yang, W. Ma, Y. Yang, J. Zhu, C. Huang, S. Dai, and X. Xi, Enhancing high-temperature and high-voltage performances of single-crystal cathodes through a / dual-modification strategy, ACS Sustain. Chem. Eng. 8, 6293 (2020).
- Y. Han, S. Heng, Y. Wang, Q. Qu, and H. Zheng, Anchoring interfacial nickel cations on single-crystal cathode surface via controllable electron transfer, ACS Energy Lett. 5, 2421 (2020).
- H. Li, J. Li, X. Ma, and J. Dahn, Synthesis of single crystal with enhanced electrochemical performance for lithium ion batteries, J. Electrochem. Soc. 165, A1038 (2018).
- Y. Liu, J. Harlow, and J. Dahn, Microstructural observations of “single crystal” positive electrode materials before and after long term cycling by cross-section scanning electron microscopy, J. Electrochem. Soc. 167, 020512 (2020).
- J. Li, L. E. Downie, L. Ma, W. Qiu, and J. Dahn, Study of the failure mechanisms of cathode material for lithium ion batteries, J. Electrochem. Soc. 162, A1401 (2015).
- E. Logan, H. Hebecker, X. Ma, J. Quinn, Y. HyeJeong, S. Kumakura, J. Paulsen, and J. Dahn, A comparison of the performance of different morphologies of using isothermal microcalorimetry, ultra-high precision coulometry, and long-term cycling, J. Electrochem. Soc. 167, 060530 (2020).
- Y. Liu, X. Fan, X. Huang, D. Liu, A. Dou, M. Su, and D. Chu, Electrochemical performance of coated with a facilely synthesized , J. Power Sources 403, 27 (2018).
- J. Li, H. Li, W. Stone, S. Glazier, and J. Dahn, Development of electrolytes for single crystal NMC532/artificial graphite cells with long lifetime, J. Electrochem. Soc. 165, A626 (2018).
- L. Ma, S. Young, L. Ellis, Q. Huang, X. Ma, M. Chatzidakis, H. Li, L. Thompson, A. Eldesoky, C. McFarlane et al., Impact of a titanium-based surface coating applied to on lithium-ion cell performance, ACS Appl. Energy Mater. 1, 7052 (2018).
- Z. Wu, C. Cao, X. Yan, X. Zang, Y. Zhao, X. Ma, R. Liu, L. Hu, Y. Jiang, and S. Sun, Effects of charge cut-off voltage on the performances of monocrystalline /graphite Li-ion cells, Electrochim. Acta 302, 153 (2019).
- B. Huang, D. Liu, K. Qian, L. Zhang, K. Zhou, Y. Liu, F. Kang, and B. Li, A simple method for the complete performance recovery of degraded Ni-rich cathode via surface reconstruction, ACS Appl. Mater. Interfaces 11, 14076 (2019).
- Y. Wang, E. Wang, X. Zhang, and H. Yu, High-voltage “single-crystal” cathode materials for lithium-ion batteries, Energy Fuels 35, 1918 (2021).
- H. Sun and A. Manthiram, Impact of microcrack generation and surface degradation on a nickel-rich layered cathode for lithium-ion batteries, Chem. Mater. 29, 8486 (2017).
- X. Guo, L. Hao, Y. Yang, Y. Wang, Y. Lu, and H. Yu, High cathode utilization efficiency through interface engineering in all-solid-state lithium metal batteries, J. Mater. Chem. A 7, 25915 (2019).
- B. You, Z. Wang, F. Shen, Y. Chang, W. Peng, X. Li, H. Guo, Q. Hu, C. Deng, S. Yang et al., Research progress of single-crystal nickel-rich cathode materials for lithium ion batteries, Small Methods 5, 2100234 (2021).
- E. Trevisanello, R. Ruess, G. Conforto, F. Richter, and J. Janek, Polycrystalline and single crystalline NCM cathode materials-quantifying particle cracking, active surface area, and lithium diffusion, Adv. Energy Mater. 11, 2003400 (2021).
- Q. Guo, J. Huang, Z. Liang, H. Potapenko, M. Zhou, X. Tang, and S. Zhong, The use of a single-crystal nickel-rich layered NCM cathode for excellent cycle performance of lithium-ion batteries, New J. Chem. 45, 3652 (2021).
- Y. Kim, Lithium nickel cobalt manganese oxide synthesized using alkali chloride flux: Morphology and performance as a cathode material for lithium ion batteries, ACS Appl. Mater. Interfaces 4, 2329 (2012).
- J. Leng, J. Wang, W. Peng, Z. Tang, S. Xu, Y. Liu, and J. Wang, Highly-dispersed submicrometer single-crystal nickel-rich layered cathode: Spray synthesis and accelerated lithium-ion transport, Small 17, 2006869 (2021).
- H. Yu, Y. Qian, M. Otani, D. Tang, S. Guo, Y. Zhu, and H. Zhou, Study of the lithium/nickel ions exchange in the layered cathode material for lithium ion batteries: Experimental and first-principles calculations, Energy Environ. Sci. 7, 1068 (2014).
- T. Park, J. Lim, and J. Son, Effect of calcination temperature of size controlled microstructure of cathode for rechargeable lithium battery, Bull. Korean Chem. Soc. 35, 357 (2014).
- J. Langdon and A. Manthiram, A perspective on single-crystal layered oxide cathodes for lithium-ion batteries, Energy Stor. Mater. 37, 143 (2021).
- J. Duan, C. Wu, Y. Cao, D. Huang, K. Du, Z. Peng, and G. Hu, Enhanced compacting density and cycling performance of Ni-riched electrode via building mono dispersed micron scaled morphology, J. Alloys Compd. 695, 91 (2017).
- M. Yi, J. Li, X. Fan, M. Bai, Z. Zhang, B. Hong, Z. Zhang, G. Hu, H. Jiang, and Y. Lai, Single crystal Ni-rich layered cathodes enabling superior performance in all-solid-state batteries with PEO-based solid electrolytes, J. Mater. Chem. A 9, 16787 (2021).
- W. Li, X. Zhang, J. Si, J. Yang, and X. Sun, -coated cathode materials with enhanced cycle performance for Li-ion batteries, Rare Met. 40, 1719 (2021).
- J. Kim, H. Ma, H. Cha, H. Lee, J. Sung, M. Seo, P. Oh, M. Park, and J. Cho, A highly stabilized nickel-rich cathode material by nanoscale epitaxy control for high-energy lithium-ion batteries, Energy Environ. Sci. 11, 1449 (2018).
- P. Kalyani and N. Kalaiselvi, Various aspects of chemistry: A review, Sci. Tech. Adv. Mater. 6, 689 (2005).
- H. Zhang, S. Yang, Y. Huang, and X. Hou, Synthesis of non-spherical cathode material for lithium-ion batteries, Energy Fuels 34, 9002 (2020).
- X. Cao and H. Zhou, An indicator of designing layered sodium-ion oxide materials, Sci. Bull. 66, 753 (2021).
- G. Qian, Z. Li, D. Meng, J. Liu, Y. He, Q. Rao, Y. Liu, Z. Ma, and L. Li, Temperature-swing synthesis of large-size single-crystal cathode materials, J. Electrochem. Soc. 168, 010534 (2021).
- G. Qian, Y. Zhang, L. Li, R. Zhang, J. Xu, Z. Cheng, S. Xie, H. Wang, Q. Rao, Y. He et al., Single-crystal nickel-rich layered-oxide battery cathode materials: Synthesis, electrochemistry, and intra-granular fracture, Energy Stor. Mater. 27, 140 (2020).
- H. Cha, J. Kim, H. Lee, N. Kim, J. Hwang, J. Sung, M. Yoon, K. Kim, and J. Cho, Boosting reaction homogeneity in high-energy lithium-ion battery cathode materials, Adv. Mater. 32, 2003040 (2020).
- T. Kimijima, N. Zettsu, and K. Teshima, Growth manner of octahedral-shaped single crystals in molten , Cryst. Growth Des. 16, 2618 (2016).
- S. Oishi, K. Teshima, and H. Kondo, Flux growth of hexagonal bipyramidal ruby crystals, J. Am. Chem. Soc. 126, 4768 (2004).
- Y. Liu, L. Tang, H. Wei, X. Zhang, Z. He, Y. Li, and J. Zheng, Enhancement on structural stability of Ni-rich cathode materials by in-situ fabricating dual-modified layer for lithium-ion batteries, Nano Energy 65, 10 (2019).
- J. Lim, H. Kim, K. Cho, and M. Cho, Fundamental mechanisms of fracture and its suppression in Ni-rich layered cathodes: Mechanics-based multiscale approaches, Extreme Mech. Lett. 22, 98 (2018).
- P. Pang, X. Tan, Z. Wang, Z. Cai, J. Nan, Z. Xing, and H. Li, Crack-free single-crystal as cycling/thermal stable cathode materials for high voltage lithium-ion batteries, Electrochim. Acta 365, 137380 (2021).
- S. Klein, P. Bärmann, O. Fromm, K. Borzutzki, J. Reiter, Q. Fan, M. Winter, T. Placke, and J. Kasnatscheew, Prospects and limitation of single-crystal cathode materials to overcome crosstalk phenomena in high-voltage lithium ion cells, J. Mater. Chem. A 9, 7546 (2021).
- F. Wang, M. Ge, S. Wi, X. Liu, J. Bai, S. Ehrlich, D. Lu, W. Lee, and Z. Chen, Kinetic limitations in single-crystal high-nickel cathodes, Angew. Chem. Int. Ed. 60, 17350 (2021).
- C. Zhan, J. Lu, A. Jeremy Kropf, T. Wu, A. Jansen, Y. Sun, X. Qiu, and K. Amine, Mn (II) deposition on anodes and its effects on capacity fade in spinel lithium manganate–carbon systems, Nat. Commun. 4, 2437 (2013).
- J. Guo and W. Li, Synthesis of single-crystal materials for Li-ion batteries by a Sol-Gel method, ACS Appl. Energy Mater. 5, 397 (2021).
- C. Yang, R. Shao, Y. Mi, L. Shen, B. Zhao, K. Wu, W. Lui, P. Gao, and H. Zhou, Stable interstitial layer to alleviate fatigue fracture of high nickel cathode for lithium-ion batteries, J. Power Sour. 376, 200 (2018).
- N. Yabuuchi, K. Yoshii, S.-T. Myung, I. Nakai, and S. Komaba, Detailed studies of a high-capacity electrode material for rechargeable batteries, , J. Am. Chem. Soc. 133, 4404 (2011).
- X. Fan, G. Hu, B. Zhang, X. Ou, J. Zhang, W. Zhao, H. Jia, L. Zou, P. Li, and Y. Yang, Crack-free single-crystalline Ni-rich layered NCM cathode enable superior cycling performance of lithium-ion batteries, Nano Energy 70, 104450 (2020).
- W. Li, X. Liu, H. Celio, P. Smith, A. Dolocan, M. Chi, and A. Manthiram, Mn versus Al in layered oxide cathodes in lithium-ion batteries: A comprehensive evaluation on long-term cyclability, Adv. Energy Mater. 8, 1703154 (2018).
- K. Min, C. Jung, D. S. Ko, K. Kim, J. Jang, K. Park, and E. Cho, High-performance and industrially feasible Ni-rich layered cathode materials by integrating coherent interphase, ACS Appl. Mater. Interfaces 10, 20599 (2018).
- Y. Su, Q. Zhang, L. Chen, L. Bao, Y. Lu, S. Chen, and F. Wu, Stress accumulation in Ni-rich layered oxide cathodes: Origin, impact, and resolution, J. Energy Chem. 65, 236 (2022).
- U. H. Kim, H. H. Ryu, J. H. Kim, R. Mücke, P. Kaghazchi, C. S. Yoon, and Y. K. Sun, Microstructure-controlled Ni-rich cathode material by microscale compositional partition for next-generation electric vehicles, Adv. Energy Mater. 9, 1803902 (2019).
- J. Sun, C. Sheng, X. Cao, P. Wang, P. He, H. Yang, Z. Chang, X. Yue, and H. Zhou, Restraining oxygen release and suppressing structure distortion in single-crystal Li-rich layered cathode materials, Adv. Funct. Mater. 32, 2110295 (2021).
- Y. Bi, J. Tao, Y. Wu, L. Li, Y. Xu, E. Hu, B. Wu, J. Hu, C. Wang, J. Zhan et al., Reversible planar gliding and microcracking in a single-crystalline Ni-rich cathode, Science 370, 1313 (2020).
- W. Wei, Z. Ding, C. Chen, C. Yang, B. Han, L. Xiao, C. Liang, P. Gao, and K. Cho, Surface-dependent stress-corrosion cracking in Ni-rich layered oxide cathodes, Acta Materialia. 212, 116914 (2021).
- F. Zhang, S. Lou, S. Li, Z. Yu, Q. Liu, A. Dai, C. Cao, M. Toney, M. Ge, X. Xiao et al., Surface regulation enables high stability of single-crystal lithium-ion cathodes at high voltage, Nat. Commun. 11, 3050 (2020).
- X. Fan, X. Ou, W. Zhao, Y. Liu, B. Zhang, J. Zhang, L. Zou, L. Seidl, Y. Li, G. Hu et al., In situ inorganic conductive network formation in high-voltage single-crystal Ni-rich cathodes, Nat. Commun. 12, 5320 (2021).
- W. Liu, X. Sun, X. Zhang, C. Li, K. Wang, W. Wen, and Y. Ma, Structural evolution of mesoporous graphene/ composite cathode for Li-ion battery, Rare Met. 40, 521 (2021).
- X. Cao, H. Li, Y. Qiao, M. Jia, P. He, J. Cabana, and H. Zhou, Achieving stable anionic redox chemistry in Li-excess O2-type layered oxide cathode via chemical ion-exchange strategy, Energy Stor. Mater. 38, 1 (2021).
- X. Cao, H. Li, Y. Qiao, M. Jia, H. Kitaura, J. Zhang, P. He, J. Cabana, and H. Zhou, Structure design enables stable anionic and cationic redox chemistry in a T2-type Li-excess layered oxide cathode, Sci. Bull. 67, 381 (2021).
- X. Cao, Qiao, M. Jia, P. He, and H. Zhou, Ion-exchange: A promising strategy to design Li-rich and Li-excess layered cathode materials for Li-ion batteries, Adv. Energy Mater. 12, 2003972 (2021).