Graphene Oxide Addition Induces the Improvement of ORR Catalysis Properties of Low-Cost Mn-Based Catalyst Used for Al-Air Battery

IF 3.3 4区 工程技术 Q2 ELECTROCHEMISTRY Journal of The Electrochemical Society Pub Date : 2023-06-01 DOI:10.1149/1945-7111/acdda2
Yi Liu, Mi Chen, M. Shah, Zhiwei Liu
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引用次数: 1

Abstract

To further improve the oxygen reduction reaction (ORR) activity of low-cost Mn based catalyst, graphene oxide (GO) was added in the preparation of one dimensional (1D) α-MnO2 nanorod using KMnO4-MnSO4 system via hydrothermal method. Experimental results showed that the GO addition (20 wt%) could induce the formation of MnO(OH) nanorod. The Mn based@GO catalyst had more surface defects and oxygen vacancies compared with pure α-MnO2. The onset potential, half-wave potential (E1/2) and limiting current density were significantly enhanced from 0.86 V/0.66 V/3.56 mA cm-2 to 0.91 V/0.77 V/5.41 mA cm-2, indicating that GO addition could greatly improve the catalytic activity of Mn based catalyst. Furthermore, the discharge voltage, power density, mass energy density of Al-air battery using Mn based@GO catalyst were greatly improved comparing with the usage of pure MnO2 catalyst, and it was also found that the application effect of Mn based @GO catalyst in the Al-air battery was almost comparable to the commercial 20% Pt/C catalyst. Our research revealed for the first time the commercial potential of the novel and low-cost MnO2/MnO(OH)@GO nanocomposite in the Al-air battery.
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氧化石墨烯的加入提高了铝空气电池用低成本锰基催化剂的ORR催化性能
为了进一步提高低成本Mn基催化剂的氧还原反应(ORR)活性,在KMnO4-MnSO4体系中,通过水热法制备一维(1D)α-MnO2纳米棒,加入氧化石墨烯(GO)。实验结果表明,添加20 wt%的GO可以诱导MnO(OH)纳米棒的形成。Mnbased@GO与纯α-MnO2相比,催化剂具有更多的表面缺陷和氧空位。起始电位、半波电位(E1/2)和极限电流密度从0.86V/0.66V/3.56mA cm-2显著提高到0.91V/0.77V/5.41mA cm-2,表明GO的加入可以大大提高Mn基催化剂的催化活性。此外,使用Mn的Al空气电池的放电电压、功率密度、质量能量密度based@GO与使用纯MnO2催化剂相比,催化剂有了很大的改进,并且还发现Mn基@GO催化剂在Al-空气电池中的应用效果几乎与商业20%Pt/C催化剂相当。我们的研究首次揭示了新型低成本MnO2/MnO(OH)@GO纳米复合材料在铝-空气电池中的商业潜力。
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来源期刊
CiteScore
7.20
自引率
12.80%
发文量
1369
审稿时长
1.5 months
期刊介绍: The Journal of The Electrochemical Society (JES) is the leader in the field of solid-state and electrochemical science and technology. This peer-reviewed journal publishes an average of 450 pages of 70 articles each month. Articles are posted online, with a monthly paper edition following electronic publication. The ECS membership benefits package includes access to the electronic edition of this journal.
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