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Simple synthesis of highly catalytic carbon-free MnCo2O4@Ni as an oxygen electrode for rechargeable Li–O2 batteries with long-term stability

机译:简单合成高度催化的无碳MnCo2O4 @ Ni作为可充电锂-氧电池的氧电极具有长期稳定性

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摘要

An effective integrated design with a free standing and carbon-free architecture of spinel MnCo2O4 oxide prepared using facile and cost effective hydrothermal method as the oxygen electrode for the Li–O2 battery, is introduced to avoid the parasitic reactions of carbon and binder with discharge products and reaction intermediates, respectively. The highly porous structure of the electrode allows the electrolyte and oxygen to diffuse effectively into the catalytically active sites and hence improve the cell performance. The amorphous Li2O2 will then precipitate and decompose on the surface of free-standing catalyst nanorods. Electrochemical examination demonstrates that the free-standing electrode without carbon support gives the highest specific capacity and the minimum capacity fading among the rechargeable Li–O2 batteries tested. The Li-O2 cell has demonstrated a cyclability of 119 cycles while maintaining a moderate specific capacity of 1000 mAh g−1. Furthermore, the synergistic effect of the fast kinetics of electron transport provided by the free-standing structure and the high electro-catalytic activity of the spinel oxide enables excellent performance of the oxygen electrode for Li-O2 cells.
机译:为了避免碳和粘结剂与放电产物的寄生反应,引入了一种有效的集成设计,该结构采用尖晶石状的MnCo2O4氧化物的自由站立和无碳结构,该结构使用廉价且经济高效的水热法作为Li-O2电池的氧电极制备。和反应中间体。电极的高度多孔结构使电解质和氧气有效地扩散到催化活性部位,从而改善了电池性能。然后,无定形Li2O2将在独立式催化剂纳米棒的表面上沉淀并分解。电化学检查表明,没有碳载体的独立式电极在所测试的可充电Li-O2电池中具有最高的比容量和最小的褪色。 Li-O2电池具有119个循环的循环能力,同时保持了1000 moderatemAh g -1 的中等比容量。此外,由独立式结构提供的电子传输的快速动力学和尖晶石氧化物的高电催化活性的协同效应使得用于Li-O2电池的氧电极具有出色的性能。

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