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用于锌空气电池的高效氧还原反应的MnO/NC纳米杂化物的简便合成

Facile synthesis of MnO/NC nanohybrids toward high-efficiency ORR for zinc-air battery.

作者信息

Zhuang Qingxi, Hu Chengjun, Zhu Weiting, Cheng Gao, Chen Meijie, Wang Ziyuan, Cai Shijing, Li Litu, Jin Zier, Wang Qiang

机构信息

School of Chemical Engineering and Light Industry, Guangdong University of Technology Guangzhou 510006 China

Foshan Institute of Environment and Energy Technology Foshan 528000 China

出版信息

RSC Adv. 2024 Jul 31;14(33):24031-24038. doi: 10.1039/d4ra04237a. eCollection 2024 Jul 26.

Abstract

The development of inexpensive non-precious metal materials as high-efficiency stable oxygen reduction reaction (ORR) catalysts holds significant promise for application in metal-air batteries. Here, we synthesized a series of nanohybrids formed from MnO nanoparticles anchored on N-doped Ketjenblack carbon (MnO/NC) a facile hydrothermal reaction and pyrolysis strategy. We systematically investigated the influence of pyrolysis temperature (600 to 900 °C) on the ORR activities of the MnO/NC samples. At the optimized pyrolysis temperature of 900 °C, the resulting MnO/NC (referred to as MnO/NC-900) exhibited superior ORR activity (onset potential = 0.85 V; half-wave potential = 0.74 V), surpassing other MnO/NC samples and nitrogen-doped Ketjenblack carbon (NC). Additionally, MnO/NC-900 demonstrated better stability than the Pt/C catalyst. The enhanced ORR activity of MnO/NC-900 was attributed to the synergy effect between MnO and NC, abundant surface carbon defects and surface-active components (N species and oxygen vacancies). Notably, the Zinc-air battery (ZAB) equipped MnO/NC-900 as the cathode catalyst delivered promising performance metrics, including a high peak power density of 146.5 mW cm, a large specific capacity of 795 mA h g , and an excellent cyclability up to 360 cycles. These results underscore the potential of this nanohybrid for applications in energy storage devices.

摘要

开发廉价的非贵金属材料作为高效稳定的氧还原反应(ORR)催化剂在金属空气电池中的应用具有重大前景。在此,我们通过简便的水热反应和热解策略合成了一系列由锚定在氮掺杂科琴黑碳(MnO/NC)上的MnO纳米颗粒形成的纳米杂化物。我们系统地研究了热解温度(600至900°C)对MnO/NC样品ORR活性的影响。在900°C的优化热解温度下,所得的MnO/NC(称为MnO/NC-900)表现出优异的ORR活性(起始电位 = 0.85 V;半波电位 = 0.74 V),超过了其他MnO/NC样品和氮掺杂科琴黑碳(NC)。此外,MnO/NC-900表现出比Pt/C催化剂更好的稳定性。MnO/NC-900增强的ORR活性归因于MnO和NC之间的协同效应、丰富的表面碳缺陷和表面活性成分(N物种和氧空位)。值得注意的是,配备MnO/NC-900作为阴极催化剂的锌空气电池(ZAB)表现出有前景的性能指标,包括146.5 mW cm的高峰值功率密度、795 mA h g的大比容量以及高达360次循环优异的循环稳定性。这些结果强调了这种纳米杂化物在储能装置中的应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a2c7/11290431/6b17c6720b1f/d4ra04237a-f1.jpg

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