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Mesoporous Carbon Nanocube Architecture for High-Performance Lithium-Oxygen Batteries

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摘要

One of the major challenges to develop high-performance lithium-oxygen (Li-O-2) battery is to find effective cathode catalysts and design porous architecture for the promotion of both oxygen reduction reactions and oxygen evolution reactions. Herein, the synthesis of mesoporous carbon nanocubes as a new cathode nanoarchitecture for Li-O-2 batteries is reported. The oxygen electrodes made of mesoporous carbon nanocubes contain numerously hierarchical mesopores and macropores, which can facilitate oxygen diffusion and electrolyte impregnation throughout the electrode, and provide sufficient spaces to accommodate insoluble discharge products. When they are applied as cathode catalysts, the Li-O-2 cells deliver discharge capacities of 26 100 mA h g(-1) at 200 mA g(-1), which is much higher than that of commercial carbon black catalysts. Furthermore, the mesoporous nanocube architecture can also serve as a conductive host structure for other highly efficient catalysts. For instance, the Ru functionalized mesoporous carbon nanocubes show excellent catalytic activities toward oxygen evolution reactions. Li-O-2 batteries with Ru functionalized mesoporous carbon nanocube catalysts demonstrate a high charge/discharge electrical energy efficiency of 86.2 at 200 mA g(-1) under voltage limitation and a good cycling performance up to 120 cycles at 400 mA g(-1) with the curtaining capacity of 1000 mA h g(-1).
机译:开发高性能锂氧(Li-O-2)电池的主要挑战之一是找到有效的阴极催化剂并设计多孔结构,以促进氧还原反应和析氧反应。本文报道了介孔碳纳米立方体的合成,作为Li-O-2电池的新型正极纳米结构。由介孔碳纳米立方体制成的氧电极含有许多分层的介孔和大孔,可以促进氧气扩散和电解质浸渍整个电极,并提供足够的空间容纳不溶性放电产物。当它们用作阴极催化剂时,Li-O-2电池在200 mA g(-1)时的放电容量为26 100 mA h g(-1),远高于商业炭黑催化剂。此外,介孔纳米立方体结构还可以作为其他高效催化剂的导电主体结构。例如,Ru功能化的介孔碳纳米立方体对析氧反应表现出优异的催化活性。在电压限制下,采用Ru功能化介孔碳纳米立方催化剂的Li-O-2电池在200 mA g(-1)下表现出86.2%的高充放电电能效率,在400 mA g(-1)下具有高达120次循环的良好循环性能,屏蔽能力为1000 mA h g(-1)。

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