TY - JOUR
T1 - Ohmic-contact engineering of Cu2S-protected zinc anodes for dendrite-free aqueous zinc metal batteries
AU - Zhou, Zhenkai
AU - Sun, Xiaojie
AU - Huo, Xiaomei
AU - Ai, Wei
N1 - Publisher Copyright:
© 2026 Elsevier B.V. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/11/1
Y1 - 2026/11/1
N2 - Aqueous zinc metal batteries are promising candidates for large-scale energy storage, yet their practical application is severely limited by dendrite growth, hydrogen evolution and corrosion at the Zn anodes. Herein, we report a Cu2S-mediated interfacial engineering strategy to stabilize Zn anodes through coupled electronic-field regulation and Zn2+ deposition modulation. The compact Cu2S layer enhances the hydrophobicity of the Zn surface, suppresses direct contact between Zn and active water molecules, and markedly reduces corrosion and hydrogen evolution. More importantly, the favorable work-function difference between Cu2S and Zn enables the formation of a low-resistance ohmic-contact interface, which promotes interfacial electron redistribution, homogenizes the surface electric field, and mitigates local charge accumulation. In addition, the zincophilic Cu2S layer exhibits strong Zn2+ adsorption and a high Zn2+ transference number, facilitating ion transport, lowering the nucleation barrier, and guiding preferential Zn deposition along the Zn (002) plane. As a result, symmetric cells deliver stable cycling for 1400 h at 5 mA cm−2 and 2.5 mAh cm−2, while full cells paired with V2O5 and MnO2 cathodes exhibit long-term stability over 2000 cycles at 1 A g−1. This work highlights ohmic-contact engineering as an effective physical-field regulation strategy for constructing dendrite-resistant and corrosion-suppressed Zn metal anodes.
AB - Aqueous zinc metal batteries are promising candidates for large-scale energy storage, yet their practical application is severely limited by dendrite growth, hydrogen evolution and corrosion at the Zn anodes. Herein, we report a Cu2S-mediated interfacial engineering strategy to stabilize Zn anodes through coupled electronic-field regulation and Zn2+ deposition modulation. The compact Cu2S layer enhances the hydrophobicity of the Zn surface, suppresses direct contact between Zn and active water molecules, and markedly reduces corrosion and hydrogen evolution. More importantly, the favorable work-function difference between Cu2S and Zn enables the formation of a low-resistance ohmic-contact interface, which promotes interfacial electron redistribution, homogenizes the surface electric field, and mitigates local charge accumulation. In addition, the zincophilic Cu2S layer exhibits strong Zn2+ adsorption and a high Zn2+ transference number, facilitating ion transport, lowering the nucleation barrier, and guiding preferential Zn deposition along the Zn (002) plane. As a result, symmetric cells deliver stable cycling for 1400 h at 5 mA cm−2 and 2.5 mAh cm−2, while full cells paired with V2O5 and MnO2 cathodes exhibit long-term stability over 2000 cycles at 1 A g−1. This work highlights ohmic-contact engineering as an effective physical-field regulation strategy for constructing dendrite-resistant and corrosion-suppressed Zn metal anodes.
KW - CuS protective layer
KW - Dendrite-free deposition
KW - Electron redistribution
KW - Ohmic contact
KW - Zinc metal anode
UR - https://www.scopus.com/pages/publications/105047679559
U2 - 10.1016/j.jelechem.2026.120507
DO - 10.1016/j.jelechem.2026.120507
M3 - 文章
AN - SCOPUS:105047679559
SN - 1572-6657
VL - 1020
JO - Journal of Electroanalytical Chemistry
JF - Journal of Electroanalytical Chemistry
M1 - 120507
ER -