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Li2SeO4 Coating Combined with Electronic Structure Tuning To Stabilize the Mo-Doped Cobalt-Free High-Nickel Cathode Material

delete2025-10-27
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PRE
AI
D
Dandan Sun
张鑫 cover
张鑫 (Xin Zhang)
J
Jiyuan Jian
Y
Yixuan Qiao
R
Rui Xiao
F
Fangmin Wu
H
Hua Huo
P
Pengjian Zuo
马玉林 (Yulin Ma)
G
Geping Yin
X
Xinqun Cheng
G
Guokang Han *
C
Chunyu Du *
DOI:10.1021/acsami.5c14941delete
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Abstract

Abstract

En 中文
Cobalt-free high-nickel layered cathode materials exhibit great potential for achieving higher energy density, but their cycling stability is largely compromised by inherent interfacial and mechanical instabilities. Molybdenum (Mo) doping could refine the size of primary particle, thus alleviating stress accumulation. Nevertheless, particle refinement leads to an increased specific surface area, making interfacial instability still a critical limitation for cycling stability. Therefore, we constructed a Li2SeO4 modification on the surface of LiNi0.95Al0.04Mo0.01O2 (NiAlMo) via high-temperature reaction between low-melting SeO2 and residual lithium, which suppresses the overgrowth of surface byproducts and mitigates the structural degradation through electronic modulation of surface lattice oxygen. The LiNi0.95Al0.04Mo0.01O2-Li2SeO4 (NiAlMo-Se) delivers 248.2 mAh/g at 0.1 C and 224.2 mAh/g at 0.5 C, with 85.2% capacity retention after 100 cycles within 2.7–4.5 V. And the rate capability of NiAlMo-Se is also significantly enhanced, reaching 178.6 mAh/g at 5 C and 154.4 mAh/g at 10 C. Simultaneous enhancement of mechanical strength and surface stability through microstructure modulation and surface modification represents a viable strategy to stabilize polycrystalline high-nickel layered cathodes.

Journal

ACS Applied Materials and Interfaces cover
ACS Applied Materials and Interfaces
IF:
8.2
Papers:
6.1W
Citations:
38.7W

Organization

H
harbin institute of technology
Scholars:
8.0W
Papers: 6.6W
Citations: 66