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一种用于高性能水系锌空气电池的双功能氧催化剂——3D-4D-5D高熵合金

A 3d-4d-5d High Entropy Alloy as a Bifunctional Oxygen Catalyst for Robust Aqueous Zinc-Air Batteries.

作者信息

He Ren, Yang Linlin, Zhang Yu, Jiang Daochuan, Lee Seungho, Horta Sharona, Liang Zhifu, Lu Xuan, Ostovari Moghaddam Ahmad, Li Junshan, Ibáñez Maria, Xu Ying, Zhou Yingtang, Cabot Andreu

机构信息

Catalonia Energy Research Institute - IREC, Sant Adrià de Besòs, 08930, Barcelona, Spain.

Departament d'Enginyeria Electrònica i Biomèdica, Universitat de Barcelona, 08028, Barcelona, Spain.

出版信息

Adv Mater. 2023 Nov;35(46):e2303719. doi: 10.1002/adma.202303719. Epub 2023 Oct 15.

Abstract

High entropy alloys (HEAs) are highly suitable candidate catalysts for oxygen evolution and reduction reactions (OER/ORR) as they offer numerous parameters for optimizing the electronic structure and catalytic sites. Herein, FeCoNiMoW HEA nanoparticles are synthesized using a solution-based low-temperature approach. Such FeCoNiMoW nanoparticles show high entropy properties, subtle lattice distortions, and modulated electronic structure, leading to superior OER performance with an overpotential of 233 mV at 10 mA cm and 276 mV at 100 mA cm . Density functional theory calculations reveal the electronic structures of the FeCoNiMoW active sites with an optimized d-band center position that enables suitable adsorption of OOH* intermediates and reduces the Gibbs free energy barrier in the OER process. Aqueous zinc-air batteries (ZABs) based on this HEA demonstrate a high open circuit potential of 1.59 V, a peak power density of 116.9 mW cm , a specific capacity of 857 mAh g and excellent stability for over 660 h of continuous charge-discharge cycles. Flexible and solid ZABs are also assembled and tested, displaying excellent charge-discharge performance at different bending angles. This work shows the significance of 4d/5d metal-modulated electronic structure and optimized adsorption ability to improve the performance of OER/ORR, ZABs, and beyond.

摘要

高熵合金(HEAs)是析氧反应和氧还原反应(OER/ORR)非常合适的候选催化剂,因为它们提供了众多用于优化电子结构和催化位点的参数。在此,采用基于溶液的低温方法合成了FeCoNiMoW高熵合金纳米颗粒。此类FeCoNiMoW纳米颗粒具有高熵特性、细微的晶格畸变和调制电子结构,从而在10 mA cm 时过电位为233 mV,在100 mA cm 时过电位为276 mV,展现出优异的析氧反应性能。密度泛函理论计算揭示了FeCoNiMoW活性位点的电子结构,其具有优化的d带中心位置,能够使OOH*中间体实现合适的吸附,并降低析氧反应过程中的吉布斯自由能垒。基于这种高熵合金的水系锌空气电池(ZABs)表现出1.59 V的高开路电位、116.9 mW cm 的峰值功率密度、857 mAh g 的比容量以及在连续充放电循环超过660小时的情况下具有出色的稳定性。还组装并测试了柔性和固态锌空气电池,它们在不同弯曲角度下均展现出优异的充放电性能。这项工作表明了4d/5d金属调制电子结构和优化吸附能力对于提高析氧反应/氧还原反应、锌空气电池及其他相关性能的重要性。

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