氧气
过渡金属
氧还原
氢
析氧
材料科学
氧还原反应
氧化还原
金属
无机化学
电催化剂
燃料电池
电流(流体)
化学
催化作用
化学工程
物理化学
冶金
电化学
热力学
有机化学
物理
电极
工程类
作者
H. M. Araújo,Biljana Šljukić,Sandra Gago,Diogo M.F. Santos
标识
DOI:10.3389/fenrg.2024.1373522
摘要
Climate change is showing its impacts now more than ever. The intense use of fossil fuels and the resulting CO 2 emissions are mainly to blame, accentuating the need to develop further the available energy conversion and storage technologies, which are regarded as effective solutions to maximize the use of intermittent renewable energy sources and reduce global CO 2 emissions. This work comprehensively overviews the most recent progress and trends in the use of transition metal-based electrocatalysts for three crucial reactions in electrochemical energy conversion and storage, namely, the oxygen evolution (OER), oxygen reduction (ORR), and hydrogen evolution (HER) reactions. By analyzing the state-of-the-art polyoxometalates (POMs) and metal-organic frameworks (MOFs), the performance of these two promising types of materials for OER, ORR, and HER is compared to that of more traditional transition metal oxides and alloy-based electrocatalysts. Both catalytic activity and stability are highly influenced by the adsorption energies of the intermediate species formed in each reaction, which are very sensitive to changes in the microstructure and chemical microenvironment. POMs and MOFs allow these aspects to be easily modified to fine-tune the catalytic performances. Therefore, their chemical tunability and versatility make it possible to tailor such properties to obtain higher electrocatalytic activities, or even to obtain derived materials with more compelling properties towards these reactions.
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