Wang Xuanping, Li Longbin, Shi Mingzhu, Wang Yiqi, Xu Guodong, Yuan Kai, Zhu Peipei, Ding Mengning, Chen Yiwang
National Engineering Research Center for Carbohydrate Synthesis, Key Lab of Fluorine and Silicon for Energy Materials and Chemistry of Ministry of Education, College of Chemistry and Chemical Engineering, Jiangxi Normal University 99 Ziyang Avenue Nanchang 330022 China
Institute of Polymers and Energy Chemistry (IPEC), Nanchang University 999 Xuefu Avenue Nanchang 330031 China.
Chem Sci. 2022 Sep 20;13(39):11639-11647. doi: 10.1039/d2sc03585e. eCollection 2022 Oct 12.
Aqueous electrochemical nitroarene reduction reaction using HO as the sustainable hydrogen source is an emerging technology to produce functionalized anilines. However, the development of low-cost electrocatalysts and the fundamental mechanistic understanding of the selective NO-RR still remain challenging. Herein, self-supporting hierarchical nanosheets consisting of high-density CoS/NiS heterojunctions on Ni foam (CoS/NiS-NF) are constructed an self-template strategy. With combined advantages of high-loading, high surface exposure, efficient conductivity and unique electronic structure of the CoS/NiS interface, the as-prepared CoS/NiS-NF exhibits efficient electrocatalytic NO-RR performance, including up to 99.0% conversion and 96.0% selectivity towards aniline, and outstanding functional group tolerance. Mechanistic investigations and theoretical calculations reveal that electron transfer from NiS to CoS is beneficial for the co-adsorption of HO and nitrobenzene molecules at the interfacial sites, promoting the formation of active hydrogen and subsequent reduction of nitrobenzene. Additionally, the interfacial charge transfer breaks the symmetry of two active Co sites at the CoS/NiS interface, which markedly reduces the energy barrier for reduction of nitrobenzene to aniline. This work offers a successful example for the interfacial engineering of metal sulfide-based heterojunctions with excellent electrocatalytic nitroarene reduction performance, and also paves the way for the in-depth understanding of the corresponding mechanism.
以HO作为可持续氢源的水性电化学硝基芳烃还原反应是一种用于生产功能化苯胺的新兴技术。然而,开发低成本电催化剂以及对选择性硝基芳烃还原反应(NO-RR)的基本机理理解仍然具有挑战性。在此,通过自模板策略构建了由泡沫镍上高密度CoS/NiS异质结组成的自支撑分级纳米片(CoS/NiS-NF)。所制备的CoS/NiS-NF具有高负载、高表面暴露、高效导电性以及CoS/NiS界面独特的电子结构等综合优势,展现出高效的电催化NO-RR性能,包括高达99.0%的转化率和对苯胺96.0%的选择性,以及出色的官能团耐受性。机理研究和理论计算表明,电子从NiS转移到CoS有利于HO和硝基苯分子在界面位点的共吸附,促进活性氢的形成以及随后硝基苯的还原。此外,界面电荷转移打破了CoS/NiS界面处两个活性Co位点的对称性,这显著降低了硝基苯还原为苯胺的能量壁垒。这项工作为具有优异电催化硝基芳烃还原性能的金属硫化物基异质结的界面工程提供了一个成功范例,也为深入理解相应机理铺平了道路。