Cheng Baixue, Zhan Haoyu, Lu Yankun, Xing Danning, Lv Xingshuai, Frauenheim Thomas, Zhou Peng, Wang Shuangyin, Zou Yuqin
State Key Laboratory of Bio-fibers and ECo─textiles, College of Materials Science and Engineering, Collaborative Innovation Center of Shandong Marine Biobased Fibers and Ecological Textiles, Institute of Marine Biobased Materials, Qingdao University, Qingdao, 266071, P. R. China.
State Key Laboratory of Chemo/Bio-Sensing and Chemometrics, College of Chemistry and Chemical Engineering, Advanced Catalytic Engineering Research Center of the Ministry of Education, Hunan University, Changsha, 410082, P. R. China.
Adv Sci (Weinh). 2024 Dec;11(48):e2410725. doi: 10.1002/advs.202410725. Epub 2024 Nov 4.
The electrocatalytic oxidation of 5-hydroxymethylfurfural (HMF) provides a feasible approach for the efficient utilization of biomass. Defect regulation is an effective strategy in the field of biomass upgrading to enhance the adsorption capacity of reactants and thus increase the activity. However, how to select appropriate strategies to regulate the over-enrichment of reactants induced by excessive oxygen vacancy is still a huge challenge. In this work, the defect-filling strategy to design and construct an element-filled oxygen vacancy site layered double hydroxide (S─Ov─LDH) is adopted, which achieves a significant reduction in the electrolysis potential of biomass platform molecule HMF oxidation reaction and a significant increase in current density. Physical characterizations, electrochemical measurements, and theoretical calculations prove that the formation of metal─S bond in the second shell effectively regulates the electronic structure of the material, thus weakening the over-strong adsorption of HMF and OH induced by excessive oxygen vacancy, promoting the formation of high-valence Co during the reaction, and forming new adsorption sites. This work discusses the catalytic enhancement mechanism of defect filling in detail, fills the gap of defect filling in the field of biomass upgrading, and provides favorable guidance for the further development of defect regulation strategies.
5-羟甲基糠醛(HMF)的电催化氧化为生物质的高效利用提供了一种可行的途径。缺陷调控是生物质升级领域中提高反应物吸附能力从而增强活性的有效策略。然而,如何选择合适的策略来调控由过多氧空位引起的反应物过度富集仍是一个巨大挑战。在这项工作中,采用了缺陷填充策略来设计和构建元素填充的氧空位位点层状双氢氧化物(S─Ov─LDH),这使得生物质平台分子HMF氧化反应的电解电位显著降低,电流密度显著提高。物理表征、电化学测量和理论计算证明,第二壳层中金属─S键的形成有效地调控了材料的电子结构,从而减弱了由过多氧空位引起的HMF和OH的过强吸附,促进了反应过程中高价Co的形成,并形成了新的吸附位点。这项工作详细讨论了缺陷填充的催化增强机制,填补了生物质升级领域中缺陷填充的空白,并为缺陷调控策略的进一步发展提供了有利指导。