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首页> 外文期刊>Advanced Materials >Interfacing Manganese Oxide and Cobalt in Porous Graphitic Carbon Polyhedrons Boosts Oxygen Electrocatalysis for Zn-Air Batteries
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Interfacing Manganese Oxide and Cobalt in Porous Graphitic Carbon Polyhedrons Boosts Oxygen Electrocatalysis for Zn-Air Batteries

机译:氧化锰氧化物和多孔石墨碳多面体中的钴促进Zn-Air电池的氧电催化

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摘要

Rational design and synthesis of highly active and robust bifunctional non-noble electrocatalysts for both oxygen evolution reaction (OER) and oxygen reduction reaction (ORR) are urgently required for efficient rechargeable metal-air batteries. Herein, abundant MnO/Co heterointerfaces are engineered in porous graphitic carbon (MnO/Co/PGC) polyhedrons via a facile hydrothermal-calcination route with a bimetal-organic framework as the precursor. The in situ generated Co nanocrystals not only create well-defined heterointerfaces with high conductivity to overcome the poor OER activity but also promote the formation of robust graphitic carbon. Owing to the desired composition and formation of the heterostructures, the resulting MnO/Co/PGC exhibits superior activity and stability toward both OER and ORR, which makes it an efficient air cathode for the rechargeable Zn-air battery. Importantly, the homemade Zn-air battery is able to deliver excellent performance including a peak power density of 172 mW cm(-2) and a specific capacity of 872 mAh g(-1), as well as excellent cycling stability (350 cycles), outperforming commercial mixed Pt/C||RuO2 catalysts. This work highlights the synergy from heterointerfaces in oxygen electrocatalysis, thus providing a promising approach for advanced metal-air cathode materials.
机译:高效的可充电金属 - 空气电池迫切需要具有氧气演化反应(OER)和氧还原反应(ORR)的高活性和鲁棒双官能非惰性电催化剂的理性设计和合成。这里,丰富的MnO / Co异种蔗渣通过具有与前体的双金属有机框架的容易水热煅烧途径设计成多孔石墨碳(MNO / CO / PGC)多面体。原位生成的Co纳米晶体不仅产生具有高导电性的明确定义的异料蔗渣,以克服贫困的OER活动,而且促进鲁棒石墨碳的形成。由于所需的组合物和形成异质结构,所得MnO / Co / PGC对oer和Orr具有优异的活性和稳定性,这使其成为可再充电Zn-空气电池的有效空气阴极。重要的是,自制Zn空气电池能够提供优异的性能,包括172mW cm(-2)的峰值功率密度,并且特定容量为872mahg(-1),以及优异的循环稳定性(350次循环) ,表现出商业混合Pt / c || ruo2催化剂。这项工作突出了来自氧电催化中的异助性的协同作用,从而为先进的金属 - 空气阴极材料提供了有希望的方法。

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