材料科学
毫秒
接口(物质)
电场
电解质
脉搏(音乐)
领域(数学)
光电子学
化学物理
工程物理
分析化学(期刊)
电压
纳米技术
电极
物理化学
电气工程
物理
化学
数学
毛细管数
天文
量子力学
毛细管作用
纯数学
复合材料
工程类
色谱法
作者
Xudong Liu,Jiaqi Long,Yingxue Fu,Lin Wu,Hao Chen,Xiaofeng Xie,Zhujiang Wang,Jun Wu,Kaisong Xiang,Hui Liu
标识
DOI:10.1021/acsami.4c07431
摘要
Interfacial electric field holds significant importance in determining both the polar molecular configuration and surface coverage during electrocatalysis. This study introduces a methodology leveraging the varying electric dipole moment of SO2 under distinct interfacial electric field strengths to enhance the selectivity of the SO2 electroreduction process. This approach presented the first attempt to utilize pulsed voltage application to the Au/PTFE membrane electrode for the control of the molecular configuration and coverage of SO2 on the electrode surface. Remarkably, the modulation of pulse duration resulted in a substantial inhibition of the hydrogen evolution reaction (HER) (FEH2 < 3%) under millisecond pulse conditions (ta = 10 ms, tc = 300 ms, Ea = −0.8 V (vs Hg/Hg2SO4), Ec = −1.8 V (vs Hg/Hg2SO4)), concomitant with a noteworthy enhancement in H2S selectivity (FEH2S > 97%). A comprehensive analysis, incorporating in situ Raman spectroscopy, electrochemical quartz crystal microbalance, COMSOL simulations, and DFT calculations, corroborated the increased selectivity of H2S products was primarily associated with the inherently large dipole moment of the SO2 molecule. The enhancement of the interfacial electric field induced by millisecond pulses was instrumental in amplifying SO2 coverage, activating SO2, facilitating the formation of the pivotal intermediate product *SOH, and effectively reducing the reaction energy barrier in the SO2 reduction process. These findings provide novel insights into the influences of ion and molecular transport dynamics, as well as the temporal intricacies of competitive pathways during the SO2 electroreduction process. Moreover, it underscores the intrinsic correlation between the electric dipole moment and surface-molecule interaction of the catalyst.
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