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用于高速率锌空气电池的 NiCo 合金与 FePc 耦合的微环境定制作为高效双功能催化剂

Microenvironment Tailoring of NiCo Alloys Coupled with FePc as Efficient Bifunctional Catalysts for High-Rate Zn-Air Batteries.

作者信息

Chen Xiaorong, Yue Dandan, Yu Xinmeng, Chen Yazhu, Chen Xiaoting, Wang Hongqiang, Li Qingyu, Ma Zhaoling

机构信息

Guangxi Key Laboratory of Low Carbon Energy Materials, Guangxi New Energy Ship Battery Engineering Technology Research Center, Guangxi Scientific and Technological Achievements Transformation Pilot Research Base of Electrochemical Energy Materials and Devices, School of Chemistry and Pharmaceutical Sciences, Guangxi Normal University, Guilin 541004, China.

出版信息

Langmuir. 2024 Aug 13;40(32):17038-17048. doi: 10.1021/acs.langmuir.4c02023. Epub 2024 Aug 3.

Abstract

The practical application of Zn-air batteries require exploring cost-effective and durable bifunctional electrocatalysts. However, the simultaneous preparation of catalysts with bifunctional activities for oxygen reduction reaction (ORR) and oxygen precipitation reaction (OER) remains challenging. Herein, we synthesized a novel hybrid catalyst (FePc/NiCo/CNT), which couples NiCo alloy with FePc through electrostatic interaction. The interaction between FePc and NiCo alloy can enhance the intrinsic catalytic activity of the active site Fe-N and prevent the electrolyte corrosion of the metal alloy, ultimately improving the stability of the catalyst by the microenvironment-tailoring strategy. The resultant FePc/NiCo/CNT catalyst exhibits outstanding oxygen reduction reaction (ORR) activity with a half-wave potential of 0.88 V, which is attributed to the abundant Fe-N active sites. Furthermore, the electron interactions between NiCo/CNT and FePc accelerate electron transfer and enhance the activation of oxygen intermediates, consequently boosting the OER activity with an overpotential of 260 mV at 10 mA cm. The Zn-air batteries assembled with FePc/NiCo/CNT show a high power density of 175.1 mW cm and excellent cycling stability for up to 430 h at 20 mA cm. The preparation of oxygen electrode catalysts for renewable clean energy devices can be made more convenient with this directly engineered strategy for ORR and OER active centers.

摘要

锌空气电池的实际应用需要探索具有成本效益且耐用的双功能电催化剂。然而,同时制备具有氧还原反应(ORR)和析氧反应(OER)双功能活性的催化剂仍然具有挑战性。在此,我们合成了一种新型混合催化剂(FePc/NiCo/CNT),它通过静电相互作用将NiCo合金与FePc耦合。FePc与NiCo合金之间的相互作用可以增强活性位点Fe-N的本征催化活性,并防止金属合金被电解质腐蚀,最终通过微环境调控策略提高催化剂的稳定性。所得的FePc/NiCo/CNT催化剂表现出出色的氧还原反应(ORR)活性,半波电位为0.88 V,这归因于丰富的Fe-N活性位点。此外,NiCo/CNT与FePc之间的电子相互作用加速了电子转移并增强了氧中间体的活化,从而在10 mA cm时过电位为260 mV的情况下提高了OER活性。用FePc/NiCo/CNT组装的锌空气电池在20 mA cm时显示出175.1 mW cm的高功率密度和高达430 h的出色循环稳定性。通过这种直接设计ORR和OER活性中心的策略,可以更方便地制备用于可再生清洁能源装置的氧电极催化剂。

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