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首页> 外文期刊>Electrochimica Acta >Manganese oxide catalysts for secondary zinc air batteries: from electrocatalytic activity to bifunctional air electrode performance
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Manganese oxide catalysts for secondary zinc air batteries: from electrocatalytic activity to bifunctional air electrode performance

机译:二次锌空气电池用锰氧化物催化剂:从电催化活性到双功能空气电极性能

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An efficient, durable and low cost air cathode with low polarization between the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) is essential for a high performance and durable secondary zinc-air battery. Different valence states and morphologies of MnxOy catalysts were synthetized via thermal treatment of EMD (generating Mn2O3 and Mn3O4) and acid digestion of synthetized Mn2O3 (producing alpha-MnO2) in order to develop an efficient Bifunctional Air Electrode (BAE). Change in the ratio H+ to Mn2O3 during the acid digestion affects the sample microporosity, the crystallographic plane distribution, as well as the physical and chemical adsorbed water which was related to defects, i.e. cation vacancies (Mn4+) and Mn3+. These characteristics were discussed and linked to the electrocatalytic activity. The best ORR performing catalyst was that with the higher surface water content (associated to material BET surface area) and a (310) surface as the 2nd more contributing plane (after 211). On the other hand, the catalyst with the higher structural water and with (110) and (200) crystallographic planes being the most intensity contributors (after 211) was the most OER active material. In this work, it was able to find a relationship between catalyst structure and air-efficiency through a volcano-like relationship between air-efficiency and surface water content. Air-efficiency (also take as round-efficiency discharge/charge in battery context) can be taken as a good descriptor of potentially good materials for Zn-Air secondary batteries technology. In this term, we were able to prepare a Bifunctional Air Electrode based on the selected alpha-MnO2 sample which demonstrated a round-efficiency of 53%, a Delta V around 1 V and a neglected loss of the charge potential (about 2.1 V) over the entire lifecycle test (more 200 cycles over 30 hours) with a capacity retention superior to 95%. (C) 2016 The Authors. Published by Elsevier Ltd.
机译:在氧气还原反应(ORR)和氧气逸出反应(OER)之间具有低极化的高效,耐用且低成本的空气阴极对于高性能和耐用的二次锌空气电池至关重要。通过对EMD进行热处理(生成Mn2O3和Mn3O4)和酸解合成的Mn2O3(生成α-MnO2)来合成MnxOy催化剂的不同价态和形态,以开发高效的双功能空气电极(BAE)。酸消化过程中H +与Mn2O3之比的变化会影响样品的微孔率,晶面分布以及与缺陷相关的物理和化学吸附水,即阳离子空位(Mn4 +)和Mn3 +。讨论了这些特性并将其与电催化活性联系起来。表现最佳的ORR催化剂是具有较高的表面水含量(与材料BET表面积相关)和(310)表面作为第二大贡献平面(在211之后)。另一方面,具有较高结构水并且(110)和(200)晶面是最大强度贡献者(211之后)的催化剂是最大的OER活性材料。在这项工作中,它能够通过空气效率和地表水含量之间的类似火山的关系找到催化剂结构和空气效率之间的关系。空气效率(在电池环境中也称为舍入效率放电/充电)可以视为Zn-Air二次电池技术潜在良好材料的良好描述。在这一学期中,我们能够根据所选的α-MnO2样品制备双功能空气电极,该样品的舍入效率为53%,Delta V约为1 V,而电荷电势的损失可忽略不计(约2.1 V)在整个生命周期测试中(30小时内进行200个以上的循环),容量保持率超过95%。 (C)2016作者。由Elsevier Ltd.发布

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