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Promoting Water Dissociation and Acetylene Transfer to Lower the Energy Consumption of Ethylene Electrosynthesis via
Boqiang Miao1, Fanpeng Chen1, Minli Tao1
1Department of Chemistry, School of Science, Institute of Molecular Plus, Tianjin University, Tianjin, 300072, China.
Abstract:
The critical challenge in the conversion of electrocatalytic acetylene (C2H2) to ethylene (C2H4) is excessive energy consumption caused by sluggish hydrogenation kinetics, which still restricts its practical application potential. Herein, we theoretically and experimentally verify that concentrating surface-active hydrogen and C2H2 could accelerate hydrogenation kinetics, thereby reducing energy consumption. Then, electrochemically reduced copper (Cu) with abundant surfactants (ER-Cu) is proposed to modulate the microenvironment to regulate the interfacial species. Consequently, a partial current density of C2H4 (jC2H4) of 0.42 A cm-2 and a turnover frequency of 1.41 s-1 are achieved over ER-Cu, leading to an energy consumption reduction of 10.3% compared with the thermally reduced counterpart. A series of mechanistic explorations indicates that the as-prepared ER-Cu not only enhances water dissociation but also benefits the adsorption and mass transfer of C2H2 feedstocks due to the broken hydrogen bond network, resulting in lower energy consumption.
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