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Constructing microstructures in nickel-iron layered double hydroxide electrocatalysts by cobalt doping for efficient overall water splitting

机译:钴掺杂构建镍铁层状双氢氧化物电催化剂的微观结构,实现高效整体水分解

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摘要

The development of Ni-Fe layered double hydroxide (NiFe LDH) catalysts for overall water splitting (OWS) is urgently required. NiFe LDHs are promising catalysts for the oxygen evolution reaction (OER). However, their hydrogen evolution reaction (HER) performance is restricted by slow kinetics. The construction of multiple types of active sites to simulta-neously optimise the OER and HER performance is significant for OWS using NiFe LDHs. Hence, a Co-doped NiFe LDH electrocatalyst with dislocations and stacking faults was designed to modulate the electronic structure and generate multiple types of activity sites. The Co0.03-NiFe0.97 LDH catalyst only required overpotentials of 280 (50 mA cm-2, OER) and 170 mV (10 mA cm-2, HER). However, it reached a current density of 50 mA cm-2 at 1.53 V during OWS. Co0.03-NiFe0.97 LDHs could be stabilised for 140 h at 1.52 V. Furthermore, Co0.03-NiFe0.97 LDHs exhibited a higher electrocatalytic activity than commercial Raney nickel and Pt/CIrO2 under industrial conditions. The significant specific surface area, high conductivity, and unique microstructures are the major factors contributing to the excel-lent OWS performance. This study suggests an efficient strategy for introducing micro-structures to fabricate catalysts with high activity for application in OWS.(c) 2023 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:开发用于整体水分解(OWS)的Ni-Fe层状双氢氧化物(NiFe LDH)催化剂亟需开发。NiFe LDHs是很有前途的析氧反应(OER)催化剂。然而,它们的析氢反应(HER)性能受到缓慢动力学的限制。构建多类型活性位点以同时优化OER和HER性能对于使用NiFe LDHs的OWS具有重要意义。 因此,设计了一种具有位错和堆叠故障的共掺杂NiFe LDH电催化剂来调控电子结构并产生多种类型的活性位点。Co0.03-NiFe0.97 LDH催化剂只需要280(50 mA cm-2,OER)和170 mV(10 mA cm-2,HER)的过电位。然而,在OWS期间,它在1.53 V时达到50 mA cm-2的电流密度。Co0.03-NiFe0.97 LDHs在1.52 V下可稳定保存140 h,此外,Co0.03-NiFe0.97 LDHs表现出比商业雷尼镍和Pt/C||工业条件下的IrO2。显著的比表面积、高导电性和独特的微观结构是促成 OWS 卓越性能的主要因素。本研究提出了一种引入微观结构制备高活性催化剂的有效策略,用于OWS应用。(c) 2023 Hydrogen Energy Publications LLC.,由Elsevier Ltd.出版。保留所有权利。

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