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首页> 外文期刊>APL Materials >A combined approach for high-performance Li–O2 batteries: A binder-free carbon electrode and atomic layer deposition of RuO2 as an inhibitor–promoter
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A combined approach for high-performance Li–O2 batteries: A binder-free carbon electrode and atomic layer deposition of RuO2 as an inhibitor–promoter

机译:高性能Li-O2电池的组合方法:无粘合剂的碳电极和RuO2的原子层沉积作为抑制剂-促进剂

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A rechargeable lithium–oxygen (Li–O2) battery is considered as a promising technology for electrochemical energy storage systems because its theoretical energy density is much higher than those of state-of-the-art Li-ion batteries. The cathode (positive electrode) for Li–O2 batteries is made of carbon and polymeric binders; however, these constituents undergo parasitic decomposition reactions during battery operation, which in turn causes considerable performance degradation. Therefore, the rational design of the cathode is necessary for building robust and high-performance Li–O2 batteries. Here, a binder-free carbon nanotube (CNT) electrode surface-modified by atomic layer deposition (ALD) of dual acting RuO2 as an inhibitor–promoter is proposed for rechargeable Li–O2 batteries. RuO2 nanoparticles formed directly on the binder-free CNT electrode by ALD play a dual role to inhibit carbon decomposition and to promote Li2O2 decomposition. The binder-free RuO2/CNT cathode with the unique architecture shows outstanding electrochemical performance as characterized by small voltage gaps (~0.9 V) as well as excellent cyclability without any signs of capacity decay over 80 cycles.
机译:可充电锂氧(Li–O2)电池被认为是电化学储能系统的一项有前途的技术,因为其理论能量密度远高于最新的锂离子电池。 Li–O2电池的阴极(正电极)由碳和聚合物粘合剂制成。但是,这些成分在电池运行期间会发生寄生分解反应,进而导致性能大幅下降。因此,正极的合理设计对于构建坚固耐用的高性能Li-O2电池是必要的。在这里,提出了一种可充电的Li-O2电池的无粘结剂碳纳米管(CNT)电极,该电极通过双作用RuO2的原子层沉积(ALD)作为抑制剂-促进剂进行了表面改性。通过ALD直接在无粘合剂的CNT电极上形成的RuO2纳米粒子在抑制碳分解和促进Li2O2分解方面起着双重作用。具有独特结构的无粘结剂RuO2 / CNT阴极表现出出色的电化学性能,其特征在于较小的电压间隙(〜0.9 V)以及出色的可循环性,并且在80个循环中没有任何容量衰减的迹象。

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