过电位
材料科学
阳极
锌
电化学
枝晶(数学)
化学工程
电流密度
集电器
金属
电极
电化学动力学
合金
动力学
无机化学
电流(流体)
锡
电化学电位
聚合物
纳米技术
作者
Fangyan Li,Er He,Yiding Jiao,Shuo Yang,Jiacheng Wang,H. Wang,Xu Liu,Xusong Li,Hanting Zhang,Yuanzhen Wang,Yiran Li,Kuangyi Zou,Ye Zhang
出处
期刊:Small
[Wiley]
日期:2026-01-25
卷期号:22 (15): e14260-e14260
标识
DOI:10.1002/smll.202514260
摘要
Achieving both high-rate capability and long-term cycling stability in zinc anode remains challenging due to the fundamental trade-off. Fast kinetics require maximum interfacial area for charge transfer, while stability demands minimal zinc/electrolyte contact to suppress parasitic reactions and dendrite growth. However, in previous studies, zinc deposited at the electrode/electrolyte interface, leading to limited lifetimes (≤ 1200 h at a utilization ratio of ≥ 60%) and high overpotentials (≥ 480 mV at 50 mA·cm-2). Here, we design a new metalgel current collector to effectively resolve the above limitation. The metalgel comprises a biphasic gallium-indium-zinc continuum immobilized within a 3D polymer network, establishing both ion and electron conduction pathways that maximize the electrochemically active interface. The biphasic gallium-indium-zinc contains solid metallic zinc dispersed within the liquid gallium-indium-zinc alloy phase, enabling inward zinc deposition/stripping via a reversible dissolution-precipitation alloying process. This inward-deposition/stripping minimizes zinc/electrolyte contact and suppresses parasitic reactions and dendrite formation, enabling zinc anodes to achieve over 4300 h of stable cycling at 80% zinc utilization ratio and maintain only 156.6 mV overpotential at an ultrahigh current density of 100 mA·cm-2. By decoupling interfacial kinetics from interfacial instabilities, this work presents a new paradigm for high-performance metal batteries.
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