阳极
锌
电解质
化学工程
成核
涂层
材料科学
电极
原子层沉积
无机化学
润湿
金属
图层(电子)
钝化
电偶阳极
腐蚀
水溶液中的金属离子
铜
铝
沉积(地质)
化学
电化学
氢
表面能
羧酸盐
枝晶(数学)
表面改性
电池(电)
制氢
电解
作者
Tian Wang,Juan Yu,Xuening Mo,Songsen Xu,Ming Li,Houpei Lin
出处
期刊:Langmuir
[American Chemical Society]
日期:2026-07-04
卷期号:42 (28): 20298-20308
标识
DOI:10.1021/acs.langmuir.6c01822
摘要
Metallic zinc is a promising anode candidate for high-safety, low-cost, and large-scale energy storage systems. However, its practical application is severely impeded by unstable electrode/electrolyte interfaces, including zinc dendrite growth, corrosion, passivation, and hydrogen evolution reactions. Herein, we designed a stable artificial interfacial layer of aluminum alginate (AA@Zn) on the zinc anode surface through the coordination effect between the negatively charged carboxyl groups in sodium alginate (SA) and Al 3+ ions. The carboxyl and hydroxyl functional groups in the AA coating can form a stable solid-state hydrogen-bonding network with water molecules, thereby suppressing the hydrogen evolution reaction (HER) and corrosion behavior. The electrostatic repulsion between carboxylate groups and sulfate ions (SO 4 2– ) in the electrolyte significantly reduces the generation of parasitic byproducts on the zinc anode surface. Furthermore, the AA coating acts as a favorable nucleation site to lower the Zn deposition energy barrier and promote uniform Zn deposition with more homogeneous nucleation. In addition, the AA coating exhibits favorable mechanical robustness and electrolyte wettability and inhibits the growth of zinc dendrites through the deposition of uniform zinc ions with uniform electric field distribution, thus achieving long-term cycling stability of the electrode interface chemistry. At a current density of 1 mA cm –2, a symmetric battery assembled with AA@Zn electrodes demonstrated a long cycle life of 3000 h. This research is expected to provide a technical basis for designing functional interfaces of metal anodes of AZIBs.
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