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钌纳米晶体作为阴极催化剂,用于具有优异性能的锂-氧电池。

Ruthenium nanocrystals as cathode catalysts for lithium-oxygen batteries with a superior performance.

机构信息

Centre for Clean Energy Technology, School of Chemistry and Forensic Science, University of Technology Sydney, Broadway, Sydney, NSW 2007, Australia.

出版信息

Sci Rep. 2013;3:2247. doi: 10.1038/srep02247.

Abstract

The key factor to improve the electrochemical performance of Li-O₂ batteries is to find effective cathode catalysts to promote the oxygen reduction and oxygen evolution reactions. Herein, we report the synthesis of an effective cathode catalyst of ruthenium nanocrystals supported on carbon black substrate by a surfactant assisting method. The as-prepared ruthenium nanocrystals exhibited an excellent catalytic activity as cathodes in Li-O₂ batteries with a high reversible capacity of about 9,800 mAh g⁻¹, a low charge-discharge over-potential (about 0.37 V), and an outstanding cycle performance up to 150 cycles (with a curtaining capacity of 1,000 mAh g⁻¹). The electrochemical testing shows that ruthenium nanocrystals can significantly reduce the charge potential comparing to carbon black catalysts, which demonstrated that ruthenium based nanomaterials could be effective cathode catalysts for high performance lithium- O₂ batteries.

摘要

提高 Li-O₂ 电池电化学性能的关键因素是找到有效的阴极催化剂,以促进氧还原和氧析出反应。在此,我们通过表面活性剂辅助法报告了一种负载在炭黑基底上的钌纳米晶的有效阴极催化剂的合成。所制备的钌纳米晶作为 Li-O₂ 电池的阴极表现出优异的催化活性,具有约 9800 mAh g⁻¹ 的高可逆容量、低充放电过电位(约 0.37 V)和出色的循环性能,达到 150 次循环(截距容量为 1000 mAh g⁻¹)。电化学测试表明,与炭黑催化剂相比,钌纳米晶能显著降低充电电位,这表明基于钌的纳米材料可能是高性能锂-O₂ 电池的有效阴极催化剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6caa/3718194/00debe97e7e3/srep02247-f1.jpg

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