Hongye Qin, Yukun Ye, Guangliang Lin, Jinyang Zhang, Wenqi Jia, Wei Xia and Lifang Jiao*,
{"title":"Regulating the Electrochemical Microenvironment of Ni(OH)2 by Cr Doping for Highly Efficient Methanol Electrooxidation","authors":"Hongye Qin, Yukun Ye, Guangliang Lin, Jinyang Zhang, Wenqi Jia, Wei Xia and Lifang Jiao*, ","doi":"10.1021/acscatal.4c0572910.1021/acscatal.4c05729","DOIUrl":null,"url":null,"abstract":"<p >Nickel-based catalysts demonstrate promising potential in integrated hydrogen production via methanol electro-oxidation (MOR). However, the MOR involves multiple hydroxide ions (OH<sup>–</sup>) and multielectron synergistic catalytic processes in alkaline electrolytes. The low OH<sup>–</sup> capture capability of Ni-based catalysts leads to a reduced energy conversion efficiency. Furthermore, the competitive adsorption of H<sub>2</sub>O and CH<sub>3</sub>OH molecules on the catalyst surface blocks active sites, resulting in a decreased selectivity for formate. To address these challenges, effectively manipulating the electrochemical microenvironment has emerged as a viable strategy. In this study, we successfully achieved selective electrooxidation of methanol to formate on Ni(OH)<sub>2</sub> by incorporating a hard Lewis acid heteroatom (Cr) to finely tune the electrochemical interface microenvironment. Experimental and theoretical investigations reveal that incorporating ordered Cr atoms into Ni(OH)<sub>2</sub> can establish a hydrophobic interface, suppressing the blockage of active sites and promoting the enrichment of OH<sup>–</sup> at the electrified interface. By leveraging the enhanced localized alkalinity and hydrophobic microenvironment at the modified electrified interface, high-value formate can be effectively synthesized with nearly 100% selectivity over a wide potential range. Furthermore, the catalysts display robust electrocatalytic capabilities, delivering remarkable performance with a high current density of 50 mA cm<sup>–2</sup> at a working potential of 1.45 V vs RHE.</p>","PeriodicalId":9,"journal":{"name":"ACS Catalysis ","volume":"14 21","pages":"16234–16244 16234–16244"},"PeriodicalIF":11.3000,"publicationDate":"2024-10-18","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"ACS Catalysis ","FirstCategoryId":"92","ListUrlMain":"https://pubs.acs.org/doi/10.1021/acscatal.4c05729","RegionNum":1,"RegionCategory":"化学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"CHEMISTRY, PHYSICAL","Score":null,"Total":0}
引用次数: 0
Abstract
Nickel-based catalysts demonstrate promising potential in integrated hydrogen production via methanol electro-oxidation (MOR). However, the MOR involves multiple hydroxide ions (OH–) and multielectron synergistic catalytic processes in alkaline electrolytes. The low OH– capture capability of Ni-based catalysts leads to a reduced energy conversion efficiency. Furthermore, the competitive adsorption of H2O and CH3OH molecules on the catalyst surface blocks active sites, resulting in a decreased selectivity for formate. To address these challenges, effectively manipulating the electrochemical microenvironment has emerged as a viable strategy. In this study, we successfully achieved selective electrooxidation of methanol to formate on Ni(OH)2 by incorporating a hard Lewis acid heteroatom (Cr) to finely tune the electrochemical interface microenvironment. Experimental and theoretical investigations reveal that incorporating ordered Cr atoms into Ni(OH)2 can establish a hydrophobic interface, suppressing the blockage of active sites and promoting the enrichment of OH– at the electrified interface. By leveraging the enhanced localized alkalinity and hydrophobic microenvironment at the modified electrified interface, high-value formate can be effectively synthesized with nearly 100% selectivity over a wide potential range. Furthermore, the catalysts display robust electrocatalytic capabilities, delivering remarkable performance with a high current density of 50 mA cm–2 at a working potential of 1.45 V vs RHE.
期刊介绍:
ACS Catalysis is an esteemed journal that publishes original research in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. It offers broad coverage across diverse areas such as life sciences, organometallics and synthesis, photochemistry and electrochemistry, drug discovery and synthesis, materials science, environmental protection, polymer discovery and synthesis, and energy and fuels.
The scope of the journal is to showcase innovative work in various aspects of catalysis. This includes new reactions and novel synthetic approaches utilizing known catalysts, the discovery or modification of new catalysts, elucidation of catalytic mechanisms through cutting-edge investigations, practical enhancements of existing processes, as well as conceptual advances in the field. Contributions to ACS Catalysis can encompass both experimental and theoretical research focused on catalytic molecules, macromolecules, and materials that exhibit catalytic turnover.