Issue 7, 2021

Morphology and electronic modulation of composite nanosheets for electrocatalytic oxygen evolution through partial and in situ transformation of NiFe-LDH

Abstract

Developing new strategies for constructing highly efficient electrocatalyst is still of great significance for renewable energy conversion. In this work, a controlled in situ partial transformation strategy through a two-step hydrothermal reaction was developed for the successful synthesis of a novel Fe–Ni(OH)2@Ni–BDC/CFC (BDC stands for 1,4-benzenedicarboxylic acid and CFC represents carbon fiber cloth) composite nanosheets. The as-obtained Fe–Ni(OH)2@Ni–BDC/CFC demonstrated improved electrocatalytic activity for oxygen evolution reaction (OER) compared to pristine Fe–Ni(OH)2/CFC or Ni–BDC/CFC under alkaline condition. Owing to the coordination effect of the BDC ligand and strong electronic interaction in the distinct chemical composite, metal cations in the composite catalyst hold a higher oxidation state, which will significantly enhance the electrocatalytic performance. Thus, the strategy illustrated here is anticipated to provide a new opportunity for synthesizing composite electrocatalysts that are difficult to synthesize via conventional methods.

Graphical abstract: Morphology and electronic modulation of composite nanosheets for electrocatalytic oxygen evolution through partial and in situ transformation of NiFe-LDH

Supplementary files

Article information

Article type
Paper
Submitted
21 Dec 2020
Accepted
11 Jan 2021
First published
12 Jan 2021

CrystEngComm, 2021,23, 1572-1577

Morphology and electronic modulation of composite nanosheets for electrocatalytic oxygen evolution through partial and in situ transformation of NiFe-LDH

X. Yang, Z. Zhao, Q. Shen, C. Xu, C. Shi, W. Cao, Y. Sun and B. Xu, CrystEngComm, 2021, 23, 1572 DOI: 10.1039/D0CE01850C

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