TY - JOUR
T1 - Double-sided engineering for space-confined reversible Zn anodes
AU - Gao, Yong
AU - Yang, Nute
AU - Bu, Fan
AU - Cao, Qinghe
AU - Pu, Jie
AU - Wang, Yuxuan
AU - Meng, Ting
AU - Chen, Jipeng
AU - Zhao, Wenbo
AU - Guan, Cao
N1 - Publisher Copyright:
© 2024 The Royal Society of Chemistry.
PY - 2024/2/6
Y1 - 2024/2/6
N2 - Achieving stable Zn anodes with high depth of discharge (DOD) will promote the energy density of rechargeable Zn-ion batteries for practical applications, but still remains a great challenge. Herein, we report a double-sided engineering strategy for stable Zn anodes, where the top layer inhibits corrosion and hydrogen production and promotes Zn2+ flux, and the bottom layer stabilizes electron transport paths, reduces stress concentrations and accelerates local heat transfer. Such double-sided engineering synergistically generates a space-confined reversible Zn deposition behavior, which effectively improves Zn plating/stripping reversibility at high DOD. As a result, the developed anode can be stably cycled for more than 300 h at a high DOD of 85.5%. A stable NVO-based full cell exhibits high specific energy density (177.1 W h kg−1, based on the whole mass of electrodes) and high volumetric energy density (202.3 W h L−1, based on the whole cell), paving a good way for achieving practical Zn-ion batteries.
AB - Achieving stable Zn anodes with high depth of discharge (DOD) will promote the energy density of rechargeable Zn-ion batteries for practical applications, but still remains a great challenge. Herein, we report a double-sided engineering strategy for stable Zn anodes, where the top layer inhibits corrosion and hydrogen production and promotes Zn2+ flux, and the bottom layer stabilizes electron transport paths, reduces stress concentrations and accelerates local heat transfer. Such double-sided engineering synergistically generates a space-confined reversible Zn deposition behavior, which effectively improves Zn plating/stripping reversibility at high DOD. As a result, the developed anode can be stably cycled for more than 300 h at a high DOD of 85.5%. A stable NVO-based full cell exhibits high specific energy density (177.1 W h kg−1, based on the whole mass of electrodes) and high volumetric energy density (202.3 W h L−1, based on the whole cell), paving a good way for achieving practical Zn-ion batteries.
UR - http://www.scopus.com/inward/record.url?scp=85186847271&partnerID=8YFLogxK
U2 - 10.1039/d3ee04292h
DO - 10.1039/d3ee04292h
M3 - 文章
AN - SCOPUS:85186847271
SN - 1754-5692
VL - 17
SP - 1894
EP - 1903
JO - Energy and Environmental Science
JF - Energy and Environmental Science
IS - 5
ER -