Nuclear Quantum Confinement Enables Robust Deuterium Bonds for Highly Reversible Aluminum Anodes
Abstract
Abstract The hydrogen evolution reaction (HER) fundamentally limits aluminum electroreduction in aqueous electrolytes by dominating interfacial charge transfer. Here, we suppress HER by engineering deuterium bonds (D‐bonds) through nuclear quantum effects, confining D between D₂O and DMF molecules. This quantum confinement weakens hydrogen delocalization and restructures the Al 3+ solvation sheath, reducing water activity kinetically and thermodynamically. The regulated electrolyte enables uniform aluminum nucleation and dense plating layers, achieving 569 h (0.05 mA cm −2 ) and 379 h (0.1 mA cm −2 ) cycling stability in the 2D 2 O/1DMF electrolyte, which outperforms traditional sulfate electrolytes by 3.6 and 6.1 times, respectively. Our work uniquely leverages nuclear quantum confinement to engineer robust D‐bonds, simultaneously suppressing HER and enabling atomic‐level control over aluminum ion solvation structures for unprecedented Al redox reversibility in sulfate electrolytes. This exemplification pushes the electrolyte engineering from extensive component adjustment to quantum precision engineering, which provides an innovative solution for the high‐activity water‐based battery system
Article Details
Authors (10)
Hao Cheng
Yao Lu
Zheng Li
Zibo Chen
School of Life Sciences
Chao Chen
Xinyi Li
Hailin Yu
School of Chemistry and Chemical Engineering Gannan Normal University Ganzhou Jiangxi P. R. China
Adham Hashibon
Institute for Materials Discovery University College London 107 Roberts Building London WC1E 7JE UK
Zhongliang Tian
School of Metallurgy and Environment Central South University Changsha 410083 China
Guanjie He
Christopher Ingold Laboratory, Department of Chemistry, University College London, 20 Gordon Street, London WC1H 0AJ, U.K.