Size controllable single-crystalline Ni-rich cathodes for high-energy lithium-ion batteries

被引:64
|
作者
Shi, Ji-Lei [1 ]
Sheng, Hang [1 ]
Meng, Xin-Hai [1 ]
Zhang, Xu-Dong [1 ]
Lei, Dan [1 ]
Sun, Xiaorui [2 ]
Pan, Hongyi [2 ]
Wang, Junyang [2 ]
Yu, Xiqian [2 ]
Wang, Chunsheng [4 ]
Li, Yangxing [3 ]
Guo, Yu-Guo [1 ,5 ]
机构
[1] Chinese Acad Sci, Inst Chem, CAS Key Lab Mol Nanostruct & Nanotechnol, Beijing Natl Lab Mol Sci BNLMS, Beijing 100190, Peoples R China
[2] Chinese Acad Sci, Inst Phys, Beijing Adv Innovat Ctr Mat Genome Engn, Beijing 100190, Peoples R China
[3] Chery New Energy Automobile Co Ltd, Wuhu 241002, Peoples R China
[4] Univ Maryland, Dept Chem & Biomol Engn, College Pk, MD 20742 USA
[5] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
lithium-ion batteries; high energy density; Ni-rich cathodes; single-crystalline; surface energy; LAYERED OXIDE CATHODES;
D O I
10.1093/nsr/nwac226
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
A single-crystalline Ni-rich (SCNR) cathode with a large particle size can achieve higher energy density, and is safer, than polycrystalline counterparts. However, synthesizing large SCNR cathodes (>5 mu m) without compromising electrochemical performance is very challenging due to the incompatibility between Ni-rich cathodes and high temperature calcination. Herein, we introduce Vegard's Slope as a guide for rationally selecting sintering aids, and we successfully synthesize size-controlled SCNR cathodes, the largest of which can be up to 10 mu m. Comprehensive theoretical calculation and experimental characterization show that sintering aids continuously migrate to the particle surface, suppress sublattice oxygen release and reduce the surface energy of the typically exposed facets, which promotes grain boundary migration and elevates calcination critical temperature. The dense SCNR cathodes, fabricated by packing of different-sized SCNR cathode particles, achieve a highest electrode press density of 3.9 g cm(-3) and a highest volumetric energy density of 3000 Wh L-1. The pouch cell demonstrates a high energy density of 303 Wh kg(-1), 730 Wh L-1 and 76% capacity retention after 1200 cycles. SCNR cathodes with an optimized particle size distribution can meet the requirements for both electric vehicles and portable devices. Furthermore, the principle for controlling the growth of SCNR particles can be widely applied when synthesizing other materials for Li-ion, Na-ion and K-ion batteries. Controllable grain sizes in a wide range enable the single-crystalline Ni-rich cathode to break through the bottleneck of volumetric energy density, which makes it qualified to replace LiCoO2 and alleviate the cobalt crisis.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Ni-rich layered cathodes for lithium-ion batteries: From challenges to the future
    Yang, Jun
    Liang, Xinghui
    Ryu, Hoon-Hee
    Yoon, Chong S.
    Sun, Yang-Kook
    ENERGY STORAGE MATERIALS, 2023, 63
  • [22] Reactive boride infusion stabilizes Ni-rich cathodes for lithium-ion batteries
    Yoon, Moonsu
    Dong, Yanhao
    Hwang, Jaeseong
    Sung, Jaekyung
    Cha, Hyungyeon
    Ahn, Kihong
    Huang, Yimeng
    Kang, Seok Ju
    Li, Ju
    Cho, Jaephil
    NATURE ENERGY, 2021, 6 (04) : 362 - 371
  • [23] Reactive boride infusion stabilizes Ni-rich cathodes for lithium-ion batteries
    Moonsu Yoon
    Yanhao Dong
    Jaeseong Hwang
    Jaekyung Sung
    Hyungyeon Cha
    Kihong Ahn
    Yimeng Huang
    Seok Ju Kang
    Ju Li
    Jaephil Cho
    Nature Energy, 2021, 6 : 362 - 371
  • [24] Simultaneously Dual Modification of Ni-Rich Layered Oxide Cathode for High-Energy Lithium-Ion Batteries
    Yang, Huiping
    Wu, Hong-Hui
    Ge, Mingyuan
    Li, Lingjun
    Yuan, Yifei
    Yao, Qi
    Chen, Jie
    Xia, Lingfeng
    Zheng, Jiangming
    Chen, Zhaoyong
    Duan, Junfei
    Kisslinger, Kim
    Zeng, Xiao Cheng
    Lee, Wah-Keat
    Zhang, Qiaobao
    Lu, Jun
    ADVANCED FUNCTIONAL MATERIALS, 2019, 29 (13)
  • [25] Doping Strategy in Developing Ni-Rich Cathodes for High-Performance Lithium-Ion Batteries
    Lee, Soo-Been
    Park, Nam-Yung
    Park, Geon-Tae
    Kim, Un-Hyuck
    Sohn, Sung-June
    Kang, Min-Seok
    Ribas, Rogerio M.
    Monteiro, Robson S.
    Sun, Yang-Kook
    ACS ENERGY LETTERS, 2024, 9 (02) : 740 - 747
  • [26] Effect of Residual Lithium Rearrangement on Ni-rich Layered Oxide Cathodes for Lithium-Ion Batteries
    Park, Jun-Ho
    Choi, Byungjin
    Kang, Yoon-Sok
    Park, Seong Yong
    Yun, Dong Jin
    Park, Insun
    Ha Shim, Jae
    Park, Jin-Hwan
    Han, Heung Nam
    Park, Kwangjin
    ENERGY TECHNOLOGY, 2018, 6 (07) : 1361 - 1369
  • [27] An in-depth understanding of chemomechanics in Ni-rich layered cathodes for lithium-ion batteries
    Yoon, Sangho
    Park, Hyun Gyu
    Koo, Sojung
    Hwang, Juncheol
    Lee, Youbean
    Park, Kwangjin
    Kim, Duho
    JOURNAL OF ALLOYS AND COMPOUNDS, 2023, 939
  • [28] Ni-rich cathode materials with concentration gradients for high-energy and safe lithium-ion batteries: A comprehensive review
    Yerkinbekova, Yerkezhan
    Kumarov, Alisher
    Tatykayev, Batukhan
    Mentbayeva, Almagul
    Repo, Eveliina
    Laakso, Ekaterina
    JOURNAL OF POWER SOURCES, 2025, 626
  • [29] Revisiting the role of Zr doping in Ni-rich layered cathodes for lithium-ion batteries
    Jung, Chul-Ho
    Li, Qingtian
    Kim, Do-Hoon
    Eum, Donggun
    Ko, Donghyun
    Choi, Jonghyun
    Lee, Jongwon
    Kim, Kyeong-Ho
    Kang, Kisuk
    Yang, Wanli
    Hong, Seong-Hyeon
    JOURNAL OF MATERIALS CHEMISTRY A, 2021, 9 (32) : 17415 - 17424
  • [30] Evaluation of gas formation and crossover in high voltage lithium-ion batteries with Ni-rich NMC cathodes
    Christensen, Tommiejean
    Ruther, Rose
    Mao, Chengyu
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2018, 256