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具有增强定向电子传输性能的银纳米线级联层状双氢氧化物纳米笼用于高效电催化析氧

Silver Nanowires Cascaded Layered Double Hydroxides Nanocages with Enhanced Directional Electron Transport for Efficient Electrocatalytic Oxygen Evolution.

作者信息

Fan Jinchen, Ma Jin, Zhu Liuliu, Wang Hui, Hao Weiju, Min Yulin, Bi Qingyuan, Li Guisheng

机构信息

School of Materials and Chemistry, University of Shanghai for Science and Technology, Shanghai, 200093, P. R. China.

Shanghai Key Laboratory of Materials Protection and Advanced Materials in Electric Power, College of Environmental and Chemical Engineering, Shanghai University of Electric Power, Shanghai, 200090, P. R. China.

出版信息

Small. 2024 Jul;20(29):e2309859. doi: 10.1002/smll.202309859. Epub 2024 Feb 20.

DOI:10.1002/smll.202309859
PMID:38377282
Abstract

Designing and fabricating highly efficient oxygen evolution reaction (OER) electrocatalytic materials for water splitting is a promising and practical approach to green and sustainable low-carbon energy systems. Herein, a facile in situ growth self-template strategy by using ZIF-67 as a consumable layered double hydroxides (LDHs) template and silver nanowires (AgNWs) as 1D conductive cascaded substrate to controllably synthesize the target AgNWs@CoFe-LDH composites with unique hollow shell sugar gourd-like structure and enhanced directional electron transport effect is reported. The AgNWs exhibit the key functions of the close connection of CoFe-LDH nanocages and the support of the directional electron transport effect in the composite catalyst inducing electrons directionally moving from CoFe-LDH to AgNWs. Meanwhile, the CoFe-LDH nanocages with ultrathin nanosheets and hollow structural properties show abundant active sites for electrocatalytic oxygen generation. The versatile AgNWs@CoFe-LDH catalyst with optimized components, enhanced directional electron transport, and synergistic effect achieves high OER performance with the overpotential of 207 mV and long-term 50 h stability at 10 mA cm in an alkaline medium. Moreover, in-depth insights into the microstructure, structure-activity relationships, identification of key intermediate species, and a proton-coupled four-electron OER mechanism based on experimental discovery and theoretical calculation are also demonstrated.

摘要

设计和制备用于水分解的高效析氧反应(OER)电催化材料是实现绿色可持续低碳能源系统的一种有前景且切实可行的方法。在此,报道了一种简便的原位生长自模板策略,该策略以ZIF-67作为可消耗的层状双氢氧化物(LDH)模板,以银纳米线(AgNWs)作为一维导电级联基底,可控地合成了具有独特空心壳糖葫芦状结构和增强的定向电子传输效应的目标AgNWs@CoFe-LDH复合材料。AgNWs在复合催化剂中发挥着关键作用,它紧密连接CoFe-LDH纳米笼,并支持定向电子传输效应,诱导电子从CoFe-LDH定向移动到AgNWs。同时,具有超薄纳米片和空心结构特性的CoFe-LDH纳米笼展现出丰富的电催化析氧活性位点。这种具有优化组分、增强的定向电子传输和协同效应的多功能AgNWs@CoFe-LDH催化剂在碱性介质中实现了高OER性能,过电位为207 mV,在电流密度为10 mA cm时具有50小时的长期稳定性。此外,还基于实验发现和理论计算,对微观结构、结构-活性关系、关键中间物种的识别以及质子耦合四电子OER机理进行了深入研究。

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