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One-dimensional manganese-cobalt oxide nanofibres as bi-functional cathode catalysts for rechargeable metal-air batteries

机译:一维锰钴氧化物纳米纤维作为可充电金属空气电池的双功能阴极催化剂

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摘要

Rechargeable metal-air batteries are considered a promising energy storage solution owing to their high theoretical energy density. The major obstacles to realising this technology include the slow kinetics of oxygen reduction and evolution on the cathode (air electrode) upon battery discharging and charging, respectively. Here, we report non-precious metal oxide catalysts based on spinel-type manganese-cobalt oxide nanofibres fabricated by an electrospinning technique. The spinel oxide nanofibres exhibit high catalytic activity towards both oxygen reduction and evolution in an alkaline electrolyte. When incorporated as cathode catalysts in Zn-air batteries, the fibrous spinel oxides considerably reduce the discharge-charge voltage gaps (improve the round-trip efficiency) in comparison to the catalyst-free cathode. Moreover, the nanofibre catalysts remain stable over the course of repeated discharge-charge cycling; however, carbon corrosion in the catalyst/carbon composite cathode degrades the cycling performance of the batteries.
机译:可充电金属空气电池由于其较高的理论能量密度而被认为是有前途的能量存储解决方案。实现该技术的主要障碍包括分别在电池放电和充电时氧气还原和在阴极(空气电极)上放出氧气的缓慢动力学。在这里,我们报告基于通过静电纺丝技术制备的尖晶石型锰钴氧化物纳米纤维的非贵金属氧化物催化剂。尖晶石氧化物纳米纤维对氧气的还原和碱性电解质中的放出均表现出高催化活性。与不含催化剂的阴极相比,当将纤维状尖晶石氧化物作为阴极催化剂掺入Zn-空气电池中时,它们极大地减小了放电-电荷间隙(改善了往返效率)。此外,纳米纤维催化剂在反复的放电-充电循环过程中保持稳定。然而,催化剂/碳复合材料阴极中的碳腐蚀降低了电池的循环性能。

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