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High-Performance and Industrially Feasible Ni-Rich Layered Cathode Materials by Integrating Coherent Interphase

Authors
Min, KyoungminJung, ChanghoonKo, Dong-SuKim, KihongJang, JaeduckPark, KwangjinCho, Eunseog
Issue Date
Jun-2018
Publisher
American Chemical Society
Keywords
Ni-rich NCM; Li reactive coating; spinel coating; intergranular cracking; phase coherency
Citation
ACS Applied Materials and Interfaces, v.10, no.24, pp.20599 - 20610
Journal Title
ACS Applied Materials and Interfaces
Volume
10
Number
24
Start Page
20599
End Page
20610
URI
http://scholarworks.bwise.kr/ssu/handle/2018.sw.ssu/39193
DOI
10.1021/acsami.8b05648
ISSN
1944-8244
Abstract
For developing the industrially feasible Ni-rich layered oxide cathode with extended cycle life, it is necessary to mitigate both the mechanical degradation due to intergranular cracking between primary particles and gas generation from the reaction between the electrolyte and residual Li in the cathode. To simultaneously resolve these two issues, we herein propose a simple but novel method to reinforce the primary particles in LiNi0.91Co0.06Mn0.03O2 by providing a Li-reactive material, whose spinel interphase is coherent with the surface of the cathode. The modified structure significantly outperforms analogous bare samples: they conserve more than 90% of the initial capacity after 50 cycles and also exhibit a greater rate capability. By tracking the same particle location during cycling, we confirmed that the current method significantly reduces crack generation because the provided coating material can penetrate inside the grain boundary of the secondary particle and help maintain the volume of the primary particle. Finally, first-principles calculations were implemented to determine the role of this spinel material, i.e., having intrinsically isotropic lattice parameters, superior mechanical properties, and only a small volume change during delithiation. We believe that the proposed method is straightforward and cost-effective; hence, it is directly applicable for the mass production of Ni-rich cathode material to enable its commercialization.
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