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Multicomponent solid-solution alloy negative electrode for Li-metal batteries

delete2026-03-05
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OA
AI
J
Jinxi Wang
J
Jiawen Zhu
Y
Yichao Cai
H
Huimin Zhang
X
Xinpeng Li
Z
Zongzi Jin
朱濯缨 (Zhuoying Zhu)
D
Deguang Liu
Z
Zhen Zhang
P
Peichen Zhong
Y
Yuansen Xie
W
Wenhui Zhu
G
Guolei Cai
H
Huanyu Xie
R
Rong Huang
Y
Yuhao Lu
S
Shuhong Jiao
S
Song Jin *
H
Hengxing Ji *
DOI:10.1038/s41467-026-70301-wdelete
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Abstract

Abstract

En 中文
Lithium metal batteries possess the high theoretical specific energy owing to the high theoretical specific capacity of lithium metal. However, practical implementations necessitate a reduction in both lithium mass fraction and lithium utilization within the negative electrode to enhance cycling life and suppress dendrite formation, resulting in a practical reversible capacity of only 30 – 50% of the theoretical value. Herein, we present a lithium metal-based multicomponent solid-solution alloy comprising approximately 90 wt.% lithium, with equal atomic ratios of cadmium, silver, magnesium, and aluminium constituting the remaining 10 wt.%. The increased mixing entropy enables high lithium-atom diffusivity, facilitating inward lithium transport into the metal foil rather than the surface deposition typically observed in conventional lithium metal negative electrodes, while simultaneously promoting a thermodynamically stable (110) crystal facet. These factors collectively yield a dendrite-free negative electrode with a reversible specific capacity of 3100 mAh g−1. One-ampere-hour pouch cells employing this negative electrode and a LiNi0.8Co0.1Mn0.1O2 positive electrode achieve an specific energies of 385 Wh kg−1 (based on the total mass of the pouch cell) with 82% capacity retention over 600 cycles. This achievement highlights the potential of this alloy negative electrode to enable safe and durable high-energy-density lithium metal batteries for practical applications. Lithium-metal batteries promise high energy but dendrites limit life. Here, authors introduce a 90 wt.% lithium multicomponent solid solution alloy negative electrode that drives lithium into the bulk, enabling 3100 mAh g − 1 capacity and a 385 Wh kg−1 pouch cell that retains 82% capacity after 600 cycles.
Keywords:
Batteries
Energy
Science
Humanities and Social Sciences
multidisciplinary
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Journal

Nature Communications cover
Nature Communications
IF:
15.7
Papers:
9.3W
Citations:
91.2W

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N
national university of singapore
Scholars:
4.6K
Papers: 2.4K
Citations: 1
C
Chinese Academy of Sciences
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U
University of Science and Technology of China
Scholars:
1.7W
Papers: 5.8K
Citations: 11.3W
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