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基于Fe@P(V-T)微螺旋阴极的流体诱导压电场增强光辅助锌空气电池

Fluid-Induced Piezoelectric Field Enhancing Photo-Assisted Zn-Air Batteries Based on a Fe@P(V-T) Microhelical Cathode.

作者信息

Liang Shuang, Song Li-Na, Wang Xiao-Xue, Wang Yi-Feng, Wu Jia-Yi, Wang Huan-Feng, Xu Ji-Jing

机构信息

State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, College of Chemistry, Jilin University, Changchun, 130012, P. R. China.

International Center of Future Science, Jilin University, Changchun, 130012, P. R. China.

出版信息

Adv Mater. 2024 Nov;36(44):e2407718. doi: 10.1002/adma.202407718. Epub 2024 Aug 28.

Abstract

Photo-assisted Zn-air batteries can accelerate the kinetics of oxygen reduction and oxygen evolution reactions (ORR/OER); however, challenges such as rapid charge carrier recombination and continuous electrolyte evaporation remain. Herein, for the first time, piezoelectric catalysis is introduced in a photo-assisted Zn-air battery to improve carrier separation capability and accelerate the ORR/OER kinetics of the photoelectric cathode. The designed microhelical catalyst exploits simple harmonic vibrations to regenerate the built-in electric field continuously. Specifically, in the presence of the low-frequency kinetic energy that occurs during water flow, the piezoelectric-photocoupling catalyst of poly(vinylidene fluoride-co-trifluoroethylene)@ferric oxide(Fe@P(V-T)) is periodically deformed, generating a constant reconfiguration of the built-in electric field that separates photogenerated electrons and holes continuously. Further, on exposure to microvibrations, the gap between the charge and discharge potentials of the Fe@P(V-T)-based photo-assisted Zn-air battery is reduced by 1.7 times compared to that without piezoelectric assistance, indicating that piezoelectric catalysis is highly effective for enhancing photocatalytic efficiency. This study provides a thorough understanding of coupling piezoelectric polarization and photo-assisted strategy in the field of energy storage and opens a fresh perspective for the investigation of multi-field coupling-assisted Zn-air batteries.

摘要

光辅助锌空气电池可以加速氧还原和析氧反应(ORR/OER)的动力学;然而,诸如快速的电荷载流子复合和持续的电解质蒸发等挑战仍然存在。在此,首次将压电催化引入光辅助锌空气电池中,以提高载流子分离能力并加速光电阴极的ORR/OER动力学。所设计的微螺旋催化剂利用简谐振动来持续再生内建电场。具体而言,在水流过程中出现的低频动能存在的情况下,聚(偏二氟乙烯-共-三氟乙烯)@氧化铁(Fe@P(V-T))的压电-光耦合催化剂会周期性变形,产生内建电场的持续重新配置,从而持续分离光生电子和空穴。此外,在受到微振动时,基于Fe@P(V-T)的光辅助锌空气电池的充放电电位差与无压电辅助时相比降低了1.7倍,这表明压电催化对于提高光催化效率非常有效。本研究全面理解了储能领域中压电极化与光辅助策略的耦合,并为多场耦合辅助锌空气电池的研究开辟了新的视角。

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