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分散的钌亚纳米团簇与多孔镍铁层状双氢氧化物之间的界面协同作用对中间调制加速全水分解的影响

Interfacial synergy between dispersed Ru sub-nanoclusters and porous NiFe layered double hydroxide on accelerated overall water splitting by intermediate modulation.

作者信息

Wang Yao, Zheng Peng, Li Mingxuan, Li Yunrui, Zhang Xin, Chen Juan, Fang Xu, Liu Yujie, Yuan Xiaolin, Dai Xiaoping, Wang Hai

机构信息

State Key Laboratory of Heavy Oil Processing, College of Chemical Engineering, China University of Petroleum, Beijing 102249, China.

National Institute of Metrology, Beijing 100013, China.

出版信息

Nanoscale. 2020 May 7;12(17):9669-9679. doi: 10.1039/d0nr01491e.

DOI:10.1039/d0nr01491e
PMID:32319487
Abstract

Construction of an efficient bifunctional electrocatalyst through a rational interface-engineering strategy to optimize the adsorption energy of H* and OH* species at the atomic/molecular level is of great importance for water splitting. Although conventional NiFe layered double hydroxide (LDH) shows excellent performance for alkaline oxygen evolution reactions (OERs), it shows extremely poor activity toward hydrogen evolution reactions (HERs) due to weak hydrogen adsorption and sluggish kinetics. In this work, integration of sub-nanoscale Ru species with NiFe LDH can dramatically enhance the adsorption energy of H* and improve their HER kinetics. Besides, benefitting from the desired potential-induced strategy, the Ru-NiFe LDH interfaces will convert to RuO2-NiFe(OOH)x interfaces to optimize the adsorption energy of OH* to meet the requirement of strengthening the OER performance. Strikingly, the Ru-NiFe LDH-F/NF sample (NF: Ni foam) shows an excellent OER and HER performance with an overpotential of 230.0 mV and 115.6 mV at a current density of 10 mA cm-2, respectively, as well as outstanding durability. The overall water splitting device was fabricated by using Ru/NiFe LDH-F/NF as both the HER and OER electrode with a potential of 1.53 V to achieve a current density of 10 mA cm-2. In addition, the theoretical calculations demonstrated that the Ru-NiFe LDH interfaces could optimize the adsorption energy of H* and OH*. This study provides a new insight into the development of highly efficient bifunctional electrocatalysts for water electrolysis.

摘要

通过合理的界面工程策略构建高效双功能电催化剂,以在原子/分子水平上优化H和OH物种的吸附能,对于水分解至关重要。尽管传统的镍铁层状双氢氧化物(LDH)在碱性析氧反应(OER)中表现出优异的性能,但由于氢吸附较弱和动力学缓慢,它对析氢反应(HER)的活性极低。在这项工作中,将亚纳米级Ru物种与NiFe LDH集成可以显著提高H的吸附能并改善其HER动力学。此外,受益于所需的电位诱导策略,Ru-NiFe LDH界面将转变为RuO2-NiFe(OOH)x界面,以优化OH的吸附能,满足增强OER性能的要求。引人注目的是,Ru-NiFe LDH-F/NF样品(NF:泡沫镍)在10 mA cm-2的电流密度下分别表现出优异的OER和HER性能,过电位分别为230.0 mV和115.6 mV,以及出色的耐久性。通过使用Ru/NiFe LDH-F/NF作为HER和OER电极,制备了整体水分解装置,在1.53 V的电位下实现了10 mA cm-2的电流密度。此外,理论计算表明,Ru-NiFe LDH界面可以优化H和OH的吸附能。这项研究为开发用于水电解的高效双功能电催化剂提供了新的见解。

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