自旋调制氧电催化

Zhi Fang, Wanting Zhao, Tong Shen, Daping Qiu, Yucheng Lv, Xinmei Hou* and Yanglong Hou*, 
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引用次数: 1

摘要

涉及氧的电催化反应,如析氧反应(OER)和氧还原反应(ORR),在燃料电池、金属-空气电池和电化学水分解等能量存储/转换应用中起着至关重要的作用。OER/ORR的高动能势垒与单重态OH - /H2O和三重态O2的自旋态相互转化密切相关,而这种相互转化受催化剂的自旋态和磁性的影响。本文综述了氧电催化中自旋/磁性相关效应的研究进展,以期建立自旋理论。结果表明,磁性过渡金属催化剂(TMCs)的自旋态(低、中、高)可以通过调整氧中间体与TMCs的键合直接影响OER/ORR的反应势垒。此外,tmc的自旋态可以建立一个自旋选择通道,以过滤OER/ORR过程中O种单/三重态相互转换所需的电子自旋。在本文中,我们介绍了许多调制自旋态的方法,例如改变晶体场、活性位点离子的氧化态和tmc的形态。此外,磁场可以驱动磁性离子的自旋翻转以实现自旋排列(↑↑)(即促进自旋极化),这将增强自旋选择性,从而加速具有相同方向的自旋的过滤和转移,从而产生和转化三重态↑O = O↑。重要的是,深入讨论了OER/ORR上磁场增强的来源,为磁辅助催化提供了广阔的前景。最后,对自旋/磁催化的发展提出了挑战和展望。本综述旨在突出自旋/磁理论在突破电催化领域瓶颈方面的重要意义,促进高效电催化剂的实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Spin-Modulated Oxygen Electrocatalysis

Spin-Modulated Oxygen Electrocatalysis

The electrocatalysis reactions involving oxygen, such as oxygen evolution reaction (OER) and oxygen reduction reaction (ORR), play a critical role in energy storage/conversion applications, e.g., fuel cells, metal-air batteries, and electrochemical water splitting. The high kinetic energy barrier of the OER/ORR is highly associated with the spin state interconversion between singlet OH/H2O and triplet O2, which is influenced by the spin state and magnetism of catalysts. This Review summarizes recent progress and advances in understanding spin/magnetism-related effects in oxygen electrocatalysis to develop spin theory. It is demonstrated that the spin states (low, intermediate, and high spin) of magnetic transition metal catalysts (TMCs) can directly affect the reaction barriers of OER/ORR by tailoring the bonding of oxygen intermediates with TMCs. Besides, the spin states of TMCs can build a spin-selective channel to filter the electron spins required for the single/triplet interconversion of O species during OER/ORR. In this Review, we introduced many approaches to modulating spin state, for instance, altering the crystal field, oxidation state of active-site ions, and the morphology of TMCs. What’s more, a magnetic field can drive the spin flip of magnetic ions to achieve the spin alignment (↑↑) (i.e., facilitating spin polarization), which will strengthen the spin selectivity for accelerating the filtration and transfer of the spins with the same direction for the generation and conversion of triplet ↑O═O↑. Importantly, the origin of magnetic field enhancement on OER/ORR are deeply discussed, which provides a great vision for the magnetism-assisted catalysis. Finally, the challenges and perspectives for future development of spin/magnetism catalysis are presented. This Review is expected to highlight the significance of spin/magnetism theory in breaking the bottleneck of electrocatalysis field and promote the development of high-efficientcy electrocatalysts for practical applications.

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来源期刊
Precision Chemistry
Precision Chemistry 精密化学技术-
CiteScore
0.80
自引率
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期刊介绍: Chemical research focused on precision enables more controllable predictable and accurate outcomes which in turn drive innovation in measurement science sustainable materials information materials personalized medicines energy environmental science and countless other fields requiring chemical insights.Precision Chemistry provides a unique and highly focused publishing venue for fundamental applied and interdisciplinary research aiming to achieve precision calculation design synthesis manipulation measurement and manufacturing. It is committed to bringing together researchers from across the chemical sciences and the related scientific areas to showcase original research and critical reviews of exceptional quality significance and interest to the broad chemistry and scientific community.
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