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二维NiSbTe单层膜上实现氧还原反应的高效催化性能和高选择性

Realizing Efficient Catalytic Performance and High Selectivity for Oxygen Reduction Reaction on a 2D NiSbTe Monolayer.

作者信息

Zhao Lusi, Yu Guangtao, Huang Xuri, Chen Wei

机构信息

Laboratory of Theoretical and Computational Chemistry, Institute of Theoretical Chemistry, College of Chemistry, Jilin University, Changchun 130023, China.

Engineering Research Center of Industrial Biocatalysis, Fujian Province University, Fujian Provincial Key Laboratory of Advanced Materials Oriented Chemical Engineering, College of Chemistry and Materials Science, Fujian Normal University, Fuzhou 350007, China.

出版信息

Inorg Chem. 2022 Jan 31;61(4):2284-2291. doi: 10.1021/acs.inorgchem.1c03662. Epub 2022 Jan 19.

Abstract

One of the immediate challenges for the large-scale commercialization of hydrogen-based fuel cells is to develop cost-effective electrocatalysts to enable cathodic oxygen reduction reaction (ORR). Herein, we focus on the potential of the two-dimensional (2D) ternary chalcogenide NiSbTe monolayer as a high-performance electrocatalyst for the ORR using density function theory. Our computed results reveal that there are an obvious hybridization and electron transfer between the O 2p and Te 5p orbitals, which can activate the adsorbed oxygen and trigger the whole ORR process, with an overpotential as low as 0.33 V. In addition, the adsorption capacity of the monolayer surface for oxygen molecules can be effectively enhanced by doping with Fe or Co atoms. The NiSbTe monolayers doped with Fe or Co atoms not only maintain their original excellent ORR catalytic activity but also improve selectivity toward the four-electron (4e) reduction pathway. We highly anticipate that this work can provide excellent candidates and new ideas for designing low-cost and high-performance ORR catalysts to replace noble metal Pt-based catalysts in fuel cells.

摘要

氢基燃料电池大规模商业化面临的直接挑战之一是开发具有成本效益的电催化剂,以实现阴极氧还原反应(ORR)。在此,我们利用密度泛函理论,聚焦于二维(2D)三元硫族化物NiSbTe单层作为ORR高性能电催化剂的潜力。我们的计算结果表明,O 2p和Te 5p轨道之间存在明显的杂化和电子转移,这可以激活吸附的氧并引发整个ORR过程,过电位低至0.33 V。此外,通过掺杂Fe或Co原子可以有效提高单层表面对氧分子的吸附能力。掺杂Fe或Co原子的NiSbTe单层不仅保持了其原有的优异ORR催化活性,还提高了对四电子(4e)还原途径的选择性。我们高度期望这项工作能够为设计低成本、高性能的ORR催化剂提供优秀的候选材料和新思路,以取代燃料电池中基于贵金属Pt的催化剂。

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