材料科学
水溶液
电解质
阳极
单糖
溶剂化
法拉第效率
化学工程
锌
分子
电池(电)
无机化学
电化学
离子
枝晶(数学)
纳米技术
腐蚀
纳米颗粒
作者
Pan Wang,Yawen He,Guocai Yuan,Lihong Huang,Hong Tan
标识
DOI:10.1021/acsami.5c17239
摘要
Aqueous zinc–metal batteries (AZMBs) face challenges involving dendrite growth, corrosion, and side reactions on the Zn anode side, stemming from unstable Zn 2+ solvation and interfacial instability. Here, d -(+)-galactose (GAL), a bioderived monosaccharide with a unique hydroxyl configuration and oxygen-rich framework, is introduced as a sustainable electrolyte additive. GAL coordinates with zinc ions to partially replace H 2 O in the primary solvation sheath, reorganizing the hydrogen-bonding network to enhance Zn 2+ transport, facilitate desolvation, and suppress dendrites. In parallel, GAL exhibits zincophilicity and selectively adsorbs onto Zn surfaces, replacing water molecules and triggering the in situ construction of a robust hybrid SEI, which protects against corrosion and directs uniform Zn deposition. Accordingly, Zn//Zn cells cycle stably for 3500 h; Cu//Zn cells achieve 99.8% Coulombic efficiency over 700 cycles, and MnO 2 //Zn full cells retain 84% capacity after 300 cycles. This work proposes a sustainable strategy employing bioderived monosaccharides to stabilize Zn anodes and advance high-performance AZMBs.
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