双功能
催化作用
吸附
法拉第效率
离解(化学)
组合化学
材料科学
电合成
酒
苯甲醇
氢
氧化还原
化学
电子转移
纳米技术
双功能催化剂
桥接(联网)
化学工程
电催化剂
作者
Yanjie Chen,X Wang,Sichen Huo,Zhuang Cai,Jiannan Du,Heyuan Sun,Hang Yue,Guangming Li,Ying Dai,Jinlong Zou,Gengtao Fu
摘要
ABSTRACT Paired electrosynthesis technology provides an effective pathway for green upgrading of low‐cost organics to high‐value‐added chemicals. However, engineering interfacial catalysts with unique atomic bridges to achieve synergistic effects and understanding their bifunctional mechanisms remain challenging. Here, a unique atomic interfacial Co‐C‐W electron bridge catalyst (Co SAs/W x C) with a nanoflower‐spherical structure is designed as a bifunctional catalyst for p ‐nitrophenol electroreduction reaction ( p ‐NP ERR) and benzyl alcohol (Ph‐CH 2 OH) oxidation reaction (BAOR). In p ‐NP ERR, W x C facilitates water dissociation to generate *H and enhances *H coverage on Co‐centers via reverse hydrogen spillover, promoting the key hydrogenation step (─NO 2 * to ─NO*). The Co–C–W bridge modulates Co e g orbitals, optimizing the adsorption of intermediates (Ph‐CH 2 O*/Ph‐CHO*) and thereby lowering reaction energy barriers for BAOR. Remarkably, a low cell‐voltage of 1.324 V is required to achieve 50 mA cm −2 , with a Faradaic efficiency of ∼99% and high production rates of high‐value p ‐aminophenol and Ph‐COOH (0.74 and 1.12 mmol h −1 cm −2 , respectively) as potential drug precursors. Importantly, the well‐built Co–C–W bridge regulates the electronic structures of the catalyst and moderate adsorption and transfer behaviors of reaction intermediates, boosting both p ‐NP ERR and BAOR. This work provides new insights for developing highly‐efficient integrated systems in diverse energy and organic chemical conversion applications.
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