一步超声辅助合成MoO3/NiFe LDH异质结高效析氧反应

IF 2.5 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Yuhao Li, Jie Zhou, Qianqian Dong, Jihao Liu, Junjie Wang, Yaru Wen, Qianqian Jin, Zijun Sun, Jinghua Liu and Xiong He
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引用次数: 0

摘要

构建异质结界面是设计高性能水氧化电催化剂的有效途径,但实现实际的异质结结构是一个重大挑战。在此,我们成功地开发并制备了一种新型的MoO3/NiFe LDH异质结材料,通过一锅高效的超声辅助水热合成策略。制备的MoO3/NiFe LDH具有出色的析氧电催化性能,可实现仅234 mV的低过电位,驱动50 mA cm−2电流密度,同时在相同电流条件下连续运行100小时,具有极小的电位变化,具有优异的运行耐久性。超声波处理有助于形成致密的,具有均匀形态的珊瑚礁启发的纳米结构,大大增加了可用的催化表面积,同时创造了丰富的可接近的活性中心。此外,MoO3与NiFe LDH之间的异质结界面促进了高效的界面电子转移,从而加速了OER动力学。该研究为构建异质结电催化剂提供了一种创新和可扩展的方法,为能量转换应用的先进和创新材料的逻辑设计提供了新的思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

One-step ultrasound-assisted synthesis of a MoO3/NiFe LDH heterojunction for an efficient oxygen evolution reaction

One-step ultrasound-assisted synthesis of a MoO3/NiFe LDH heterojunction for an efficient oxygen evolution reaction

Constructing heterojunction interfaces represents an effective approach to designing high-performance electrocatalysts for water oxidation, yet realizing practical heterostructures presents significant challenges. Herein, we have successfully developed and fabricated a novel MoO3/NiFe LDH heterojunction material through an efficient one-pot ultrasound-assisted hydrothermal synthesis strategy. The as-prepared MoO3/NiFe LDH exhibits outstanding electrocatalytic performance for oxygen evolution, achieving a low overpotential of merely 234 mV to drive 50 mA cm−2 current density, while showing excellent operational durability with minimal potential variation following continuous operation for 100 hours under identical current conditions. The ultrasonic treatment facilitates the formation of a dense, coral reef-inspired nanostructure with uniform morphology, substantially increasing the available catalytic surface area while creating abundant accessible active centers. Furthermore, the heterojunction interface between MoO3 and NiFe LDH facilitates efficient interfacial electron transfer, thereby accelerating the OER kinetics. This study offers an innovative and scalable approach for constructing heterojunction electrocatalysts, offering new ideas for the logical design of advanced and innovative materials for energy conversion applications.

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来源期刊
New Journal of Chemistry
New Journal of Chemistry 化学-化学综合
CiteScore
5.30
自引率
6.10%
发文量
1832
审稿时长
2 months
期刊介绍: A journal for new directions in chemistry
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