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掺杂剂和表面活性剂调控的电极-电解质界面实现高效炔醇半氢化反应

Dopant- and Surfactant-Tuned Electrode-Electrolyte Interface Enabling Efficient Alkynol Semi-Hydrogenation.

作者信息

Zhao Yuan, Xu Jipeng, Huang Kai, Ge Wangxin, Liu Zhen, Lian Cheng, Liu Honglai, Jiang Hongliang, Li Chunzhong

机构信息

Key Laboratory for Ultrafine Materials of Ministry of Education, School of Chemical Engineering, East China University of Science and Technology, Shanghai 200237, China.

Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering, East China University of Science and Technology, Shanghai 200237, China.

出版信息

J Am Chem Soc. 2023 Mar 22;145(11):6516-6525. doi: 10.1021/jacs.3c00565. Epub 2023 Mar 13.

Abstract

Electrochemical alkynol semi-hydrogenation has emerged as a sustainable and environmentally benign route for the production of high-value alkenols, featuring water as the hydrogen source instead of H. It is highly challenging to design the electrode-electrolyte interface with efficient electrocatalysts and their matched electrolytes to break the selectivity-activity stereotype. Here, boron-doped Pd catalysts (PdB) and surfactant-modified interface are proposed to enable the simultaneous increase in alkenol selectivity and alkynol conversion. Typically, compared to pure Pd and commercial Pd/C catalysts, the PdB catalyst achieves both higher turnover frequency (139.8 h) and specific selectivity (above 90%) for the semi-hydrogenation of 2-methyl-3-butyn-2-ol (MBY). Quaternary ammonium cationic surfactants that are employed as electrolyte additives are assembled at the electrified interface in response to applied bias potential, establishing an interfacial microenvironment that can facilitate alkynol transfer and hinder water transfer suitably. Eventually the hydrogen evolution reaction is inhibited and alkynol semi-hydrogenation is promoted, without inducing the decrease of alkenol selectivity. This work offers a distinct perspective on creating a suitable electrode-electrolyte interface for electrosynthesis.

摘要

电化学炔醇半加氢已成为一种可持续且环境友好的生产高价值烯醇的途径,其特点是以水作为氢源而非氢气。设计具有高效电催化剂及其匹配电解质的电极 - 电解质界面以打破选择性 - 活性定式极具挑战性。在此,提出了硼掺杂钯催化剂(PdB)和表面活性剂修饰的界面,以实现烯醇选择性和炔醇转化率的同时提高。通常,与纯钯和商业钯/碳催化剂相比,PdB催化剂在2 - 甲基 - 3 - 丁炔 - 2 - 醇(MBY)的半加氢反应中实现了更高的周转频率(139.8 h⁻¹)和特定选择性(高于90%)。用作电解质添加剂的季铵阳离子表面活性剂响应施加的偏置电位在带电界面处组装,建立了一个能够促进炔醇转移并适当阻碍水转移的界面微环境。最终,析氢反应受到抑制,炔醇半加氢得到促进,且不会导致烯醇选择性降低。这项工作为创建适用于电合成的电极 - 电解质界面提供了独特的视角。

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