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制备 N 和 S 共掺杂的基于木质素的多孔碳气凝胶负载 FeCo 合金及其在锌空气电池中的氧气析出和还原反应中的应用。

Fabrication of N and S co-doped lignin-based porous carbon aerogels loaded with FeCo alloys and their application to oxygen evolution and reduction reactions in Zn-air batteries.

机构信息

Liaoning Key Lab of Lignocellulose Chemistry and BioMaterials, Liaoning Collaborative Innovation Center for Lignocellulosic Biorefinery, College of Light Industry and Chemical Engineering, Dalian Polytechnic University, Dalian 116034, China.

Liaoning Key Lab of Lignocellulose Chemistry and BioMaterials, Liaoning Collaborative Innovation Center for Lignocellulosic Biorefinery, College of Light Industry and Chemical Engineering, Dalian Polytechnic University, Dalian 116034, China.

出版信息

Int J Biol Macromol. 2024 Jul;273(Pt 2):132961. doi: 10.1016/j.ijbiomac.2024.132961. Epub 2024 Jun 6.

Abstract

Zn-air batteries are a highly promising clean energy sustainable conversion technology, and the design of dual-function electrocatalysts with excellent activity and stability is crucial for their development. In this work, FeCo alloy loaded biomass-based N and S co-doped carbon aerogels (FeCo@NS-LCA) were fabricated from chitosan and lignosulfonate-metal chelates via liquid nitrogen pre-frozen synergistic high-temperature carbonization with application in electrocatalytic reactions. The abundant oxygen-containing functional groups on lignosulfonates have a chelating effect on metal ions, which can avoid the aggregation of metal nanoparticles during carbonation and catalysis, facilitating the construction of a nanoconfinement catalytic system with biomass carbon as the domain-limiting body and FeCo nanoparticles as the active sites. FeCo@NS-LCA exhibited catalytic activity (E = 0.87 V, J = 5.7 mA cm) comparable to the commercial Pt/C in the oxygen reduction reaction (ORR), excellent resistance to methanol toxicity and stability. Meanwhile, the overpotential of oxygen evolution reaction (OER) was 324 mV, close to that of commercial RuO catalysts (351 mV). This study utilizes the coordination action of lignosulfonate to provide a novel and environmentally friendly method for the preparation of confined nano-catalysts and provides a new perspective for the high-value utilization of biomass resources.

摘要

锌空气电池是一种极具前景的清洁能源可持续转化技术,设计具有优异活性和稳定性的双功能电催化剂对于其发展至关重要。在这项工作中,通过液氮气预冷冻协同高温碳化,由壳聚糖和木质素磺酸盐-金属配合物制备了负载 FeCo 合金的生物质基 N 和 S 共掺杂碳气凝胶(FeCo@NS-LCA),并将其应用于电催化反应。木质素磺酸盐上丰富的含氧官能团对金属离子具有螯合作用,可在碳化和催化过程中避免金属纳米颗粒的聚集,有利于构建以生物质碳为限域主体、FeCo 纳米颗粒为活性位点的纳米限域催化体系。FeCo@NS-LCA 在氧还原反应(ORR)中表现出与商业 Pt/C 相当的催化活性(E = 0.87 V,J = 5.7 mA cm),对甲醇毒性和稳定性具有优异的抗性。同时,其析氧反应(OER)的过电势为 324 mV,接近商业 RuO 催化剂(351 mV)。本研究利用木质素磺酸盐的配位作用,为制备受限纳米催化剂提供了一种新颖且环保的方法,为生物质资源的高值化利用提供了新视角。

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