A facile synthesis of CeO2 from the GO@Ce-MOF precursor and its efficient performance in the oxygen evolution reaction

析氧 介电谱 分解水 催化作用 材料科学 化学工程 循环伏安法 X射线光电子能谱 电化学 计时安培法 比表面积 纳米技术 无机化学 化学 电极 物理化学 有机化学 光催化 工程类
作者
Wasif Mahmood Ahmed Malik,Sheereen Afaq,Azhar Mahmood,Li Niu,Muhammad Yousaf Ur Rehman,Muhammad Ibrahim,Abrar Mohyuddin,Ashfaq Mahmood Qureshi,Muhammad Naeem Ashiq,Adeel Hussain Chughtai
出处
期刊:Frontiers in Chemistry [Frontiers Media]
卷期号:10 被引量:16
标识
DOI:10.3389/fchem.2022.996560
摘要

Electrochemical water splitting has enticed fascinating consideration as a key conduit for the advancement of renewable energy systems. Fabricating adequate electrocatalysts for water splitting is fervently preferred to curtail their overpotentials and hasten practical utilizations. In this work, a series of Ce-MOF, GO@Ce-MOF, calcinated Ce-MOF, and calcinated GO@Ce-MOF were synthesized and used as high-proficient electrocatalysts for the oxygen evolution reaction. The physicochemical characteristics of the prepared samples were measured by diverse analytical techniques including SEM, HRTEM, FTIR, BET, XPS, XRD, and EDX. All materials underwent cyclic voltammetry tests and were evaluated by electrochemical impedance spectroscopy and oxygen evolution reaction. Ce-MOF, GO@Ce-MOF, calcinated Ce-MOF, and calcinated GO@Ce-MOF have remarkable properties such as enhanced specific surface area, improved catalytic performance, and outstanding permanency in the alkaline solution (KOH). These factors upsurge ECSA and intensify the OER performance of the prepared materials. More exposed surface active-sites present in calcinated GO@Ce-MOF could be the logic for superior electrocatalytic activity. Chronoamperometry of the catalyst for 15°h divulges long-term stability of Ce-MOF during OER. Impedance measurements indicate higher conductivity of synthesized catalysts, facilitating the charge transfer reaction during electrochemical water splitting. This study will open up a new itinerary for conspiring highly ordered MOF-based surface active resources for distinct electrochemical energy applications.
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