TY - JOUR
T1 - Reversible Nano Crystalline-Phase Transformation in Si-Based Anode Enables Stable All-Solid-State Batteries
AU - Shen, Xuefeng
AU - Wang, Yihe
AU - Jiang, Zirui
AU - Liang, Xiaoning
AU - Demicoli, Marija
AU - Mule Stagno, Luciano
AU - Sun, Baoyu
AU - Sun, Huanli
AU - Hao, Xuechun
AU - Zhang, Pengfei
AU - Wang, Zhilu
AU - Deng, Junkai
AU - Wang, Jiantao
AU - Song, Jiangxuan
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025/7/9
Y1 - 2025/7/9
N2 - Sulfide-based all-solid-state batteries employing Si anodes hold great promise for achieving high safety and energy density. However, the severe structural degradation of Si during cycling and its sluggish reaction kinetics lead to rapid capacity decay, significantly limiting battery lifespan. Herein, we propose a reversible nanocrystalline-phase transformation strategy by incorporating phosphate (P) and zinc (Zn) into a Si matrix to develop a high-capacity and stable Si-based anode. The anodes are electrochemically driven and converted in situ into Li15Si4, LiZn, and Li3P nanocrystalline phases during cycling, which mitigated the expansion stress of the electrode, maintaining its structural stability. Meanwhile, Zn and P reduced the Li-ion diffusion energy barrier and band gap of Si, improving the ion/electron transport ability within the electrode. The NCM90-based full cell incorporating this anode demonstrates stable operation for over 3,000 cycles at 2C rate. This alloy-based anode design offers an effective pathway for developing long-cycle-life all-solid-state batteries.
AB - Sulfide-based all-solid-state batteries employing Si anodes hold great promise for achieving high safety and energy density. However, the severe structural degradation of Si during cycling and its sluggish reaction kinetics lead to rapid capacity decay, significantly limiting battery lifespan. Herein, we propose a reversible nanocrystalline-phase transformation strategy by incorporating phosphate (P) and zinc (Zn) into a Si matrix to develop a high-capacity and stable Si-based anode. The anodes are electrochemically driven and converted in situ into Li15Si4, LiZn, and Li3P nanocrystalline phases during cycling, which mitigated the expansion stress of the electrode, maintaining its structural stability. Meanwhile, Zn and P reduced the Li-ion diffusion energy barrier and band gap of Si, improving the ion/electron transport ability within the electrode. The NCM90-based full cell incorporating this anode demonstrates stable operation for over 3,000 cycles at 2C rate. This alloy-based anode design offers an effective pathway for developing long-cycle-life all-solid-state batteries.
KW - Si anode
KW - all-solid-state batteries
KW - large-scale manufacturing
KW - nanocrystal phase transformation
UR - https://www.scopus.com/pages/publications/105009511494
U2 - 10.1021/acs.nanolett.5c02142
DO - 10.1021/acs.nanolett.5c02142
M3 - 文章
C2 - 40586474
AN - SCOPUS:105009511494
SN - 1530-6984
VL - 25
SP - 10826
EP - 10833
JO - Nano Letters
JF - Nano Letters
IS - 27
ER -