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首页> 外文期刊>ChemNanoMat >Oxygen-Deficient Birnessite-MnO(2)for High-Performing Rechargeable Aqueous Zinc-Ion Batteries
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Oxygen-Deficient Birnessite-MnO(2)for High-Performing Rechargeable Aqueous Zinc-Ion Batteries

机译:用于高性能可充电水性锌离子电池的缺氧缺氧性耐氧钛矿 - MNO(2)

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摘要

The development and commercialisation of Zinc-Ion Batteries (ZIBs) faces a daunting challenge caused by the limited selection of cathode materials. Among all the available choices, Manganese-Based Oxides show the most promising potential due to the various benefits such as, low costs, natural abundance of Manganese, environmental benignity and its multiple valence states. Most notably, Manganese Dioxide (MnO2) as a cathode material for ZIBs has always been a popular area of research as it can exist in various phases with tunnelled and layered structures for the (de-)intercalation of Zn(2+)ions. However, despite many works reported on enhancing the electrochemical performances of MnO2, most of the proposed methodologies of improving the performance is based on Zn(2+)ion insertion kinetics and these methods has been pushed to saturation. Herein, we propose an alternative direction of creating oxygen deficiency via defect engineering to enhance the surface-capacitive electrochemical performance of MnO2. In this work, the Zn//Oxygen-deficient Birnessite-MnO(2)achieved a specific capacity of 378 mAh g(-1)which is one of the highest among other existing Zn//Birnessite-MnO(2)battery systems. Thus, this work is expected to shine light on the potential of defect engineering as a strategy to enhance electrochemical performances of MnO2.
机译:锌离子电池(ZIBS)的开发和商业化面临着由有限的阴极材料选择引起的令人生畏的挑战。在所有可用的选择中,基于锰的氧化物展示了由于各种益处,诸如低成本,天然丰富的锰,环境良性及其多价位态的各种益处。最值得注意的是,二氧化锰(MNO2)作为用于ZIBS的阴极材料,这一直是一种流行的研究领域,因为它可以存在于具有隧道和分层结构的各种相中,用于Zn(2+)离子的(2+)离子的嵌入而存在。然而,尽管有许多作品提高了MnO2的电化学性能,但大多数提出的改善性能的方法都基于Zn(2+)离子插入动力学,并且这些方法已被推到饱和度。这里,我们提出了一种通过缺陷工程产生缺氧缺氧的替代方向,以增强MnO2的表面电容电化学性能。在这项工作中,Zn //缺氧性Birneyite-MnO(2)达到了378mAhg(-1)的特定容量,其是其他现有Zn // BiRnerneyite-MnO(2)电池系统中最高的容量之一。因此,预计这项工作将在缺陷工程的潜力中发光作为提高MNO2电化学性能的策略。

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