Cheng Ruiqi, Wang Fei, Jiang Min, Li Kaiqi, Zhao Tianshuo, Meng Pengyu, Yang Jian, Fu Chaopeng
School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, P. R. China.
ACS Appl Mater Interfaces. 2021 Aug 11;13(31):37123-37132. doi: 10.1021/acsami.1c09067. Epub 2021 Jul 31.
The oxygen reduction reaction (ORR) with sluggish kinetics on the cathode of aluminum-air (Al-air) batteries greatly limits their further development. Here, a new strategy is proposed to synthesize oxygen and nitrogen codoped carbon nanofibers loaded with manganese oxides (MnO/MnO/ONCNF-) as an efficient electrocatalyst for ORR by using oxygen plasma surface etching. The MnO/MnO/ONCNF-3 exhibit superior ORR performance in an alkaline electrolyte, which is attributed to various active sites including N and O heteroatoms, vacancies, and manganese oxides. Additionally, the fabricated homemade Al-air battery (AAB) with MnO/MnO/ONCNF-3 exhibits a maximum power density of 129.7 mW cm, demonstrating comparable performance to AABs based on the commercial Pt/C catalyst. This work provides a new approach of using O plasma for enhancing the ORR catalytic activities of carbon materials.
铝空气(Al-air)电池阴极上动力学迟缓的氧还原反应(ORR)极大地限制了其进一步发展。在此,提出了一种新策略,通过氧等离子体表面蚀刻合成负载锰氧化物(MnO/MnO/ONCNF-)的氧氮共掺杂碳纳米纤维,作为ORR的高效电催化剂。MnO/MnO/ONCNF-3在碱性电解质中表现出优异的ORR性能,这归因于包括N和O杂原子、空位以及锰氧化物在内的各种活性位点。此外,所制备的采用MnO/MnO/ONCNF-3的自制铝空气电池(AAB)表现出129.7 mW cm的最大功率密度,展示出与基于商业Pt/C催化剂的AAB相当的性能。这项工作提供了一种利用氧等离子体提高碳材料ORR催化活性的新方法。