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Dual-functional boron-modification on a cobalt-free single-crystal layered cathode for high-voltage lithium-ion batteries.

Authors :
Liu, Tiancheng
Fan, Ke
Lin, Zezhou
Liang, Zhuojian
Chen, Changsheng
Li, Guangchao
Guo, Xuyun
Zhu, Yanping
Chen, Gao
Li, Hao
Wu, Tai-Sing
Soo, Yun-Liang
Li, Molly Meng-Jung
Zhu, Ye
Dong, Mingxia
Huang, Haitao
Source :
Journal of Materials Chemistry A; 9/7/2023, Vol. 11 Issue 33, p17810-17820, 11p
Publication Year :
2023

Abstract

A Ni-rich cobalt-free layered cathode material (LiNi<subscript>x</subscript>Mn<subscript>1−x</subscript>O<subscript>2</subscript>) is promising due to its low cost, excellent structural stability, and thermal stability. However, low Li-ion diffusion kinetics, highly reactive Ni<superscript>4+</superscript>, and stress-induced intragranular micro-cracking restrict its further application. Here, we report dual-functional boron-modification (doping and coating) on a cobalt-free single-crystal layered cathode (B-LiNi<subscript>0.75</subscript>Mn<subscript>0.25</subscript>O<subscript>2</subscript>) via a simple solid-state method. The boron atoms prefer to occupy the tetrahedral interstices in the Li layer during the sintering process, which enlarges the c-axis for fast Li-ion diffusion kinetics and can also serve as a pillar to achieve an ultra-low (1.62%) c-axis lattice contraction at 80% state of charge (SOC). And boron doping passivates the lattice O, inhibits the irreversible phase transition and provides excellent thermal stability at a high cut-off voltage of 4.5 V. On the other hand, the byproduct LiBO<subscript>2</subscript> can improve Li-ion diffusion and alleviate side reactions at the electrode/electrolyte interface by serving as a Li-ion conductive coating layer. As a result, B–LiNi<subscript>0.75</subscript>Mn<subscript>0.25</subscript>O<subscript>2</subscript> is almost free of inter- and intragranular micro-cracking with faster Li-ion diffusion kinetics. It delivers 176.6 mA h g<superscript>−1</superscript> at 1C and achieves 82.9% capacity retention after 200 cycles. This work not only provides a low-cost and scalable method to remove Co from conventional Ni-rich layered cathodes, but also reveals the commercial feasibility of highly safe single-crystal layered cathode materials. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20507488
Volume :
11
Issue :
33
Database :
Complementary Index
Journal :
Journal of Materials Chemistry A
Publication Type :
Academic Journal
Accession number :
170062143
Full Text :
https://doi.org/10.1039/d3ta02784h