塔菲尔方程
介电谱
化学
电化学
离解(化学)
催化作用
分子
化学物理
氢
电催化剂
红外光谱学
光谱学
化学工程
无机化学
极化(电化学)
齿合度
吸收光谱法
和频产生
电极
扫描隧道显微镜
反应机理
电解质
多相催化
物理化学
制氢
材料科学
分解水
解吸
氢键
铟
洋葱
作者
Zhensheng Mi,Fengyuan Wei,Kaicong Yang,Yu Ge,Yufei Wang,Zhenwei Wei,Peng Li,Ting Chen,Lin Zhuang,Gongwei Wang,Li Xiao
摘要
Growing evidence indicates that modulation of the catalyst surface microenvironment provides an effective route to optimize electrocatalytic performance, serving as a valuable complement to the traditional emphasis on electronic effects. Yet, despite recent progress in probing interfacial water activation under low-proton conditions, our understanding of this process remains far from complete. Herein, we selected 2,6-diacetylpyridine (DAcPy), a representative molecule with pronounced electrocatalytic enhancement effects, to systematically elucidate the mechanism of interfacial water activation. DAcPy universally enhances reaction kinetics across diverse hydrogen electrocatalytic systems on both Pt and Cu surfaces. Combined scanning tunneling microscope (STM) imaging and theoretical calculations reveal that the symmetric diacetyl groups of DAcPy form a geometrically matched V-shaped molecular vise. This bidentate C═O···H–O hydrogen bonding configuration precisely captures water molecules, and the resulting cooperative polarization effect weakens the H–OH bond, increasing the interfacial water dissociation constant (Kw) by a factor of 2. In situ attenuated total reflection-surface-enhanced infrared absorption spectroscopy (ATR-SEIRAS) measurements directly confirm the formation of a strengthened hydrogen-bond network upon DAcPy modification, in agreement with theoretical predictions. Electrochemical impedance spectroscopy with distribution of relaxation times (EIS-DRT) analysis further reveals that this molecular strategy selectively accelerates the water-involved Volmer and Heyrovsky steps without affecting the Tafel step. Notably, the DAcPy-enabled enhancement applies broadly, significantly boosting rates across various low-proton electrocatalytic systems, including alkaline HER/HOR, CO/CO2 electroreduction to methane/ethylene, and selective acetylene hydrogenation.
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