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基于碳纳米管的 MnO 异质结构作为水系锌离子电池的阴极材料。

MnO Heterostructure on Carbon Nanotubes as Cathode Material for Aqueous Zinc-Ion Batteries.

机构信息

Department of Chemical Engineering, Faculty of Engineering, Chulalongkorn University, Bangkok 10330, Thailand.

Division of Materials Science and Engineering, Faculty of Engineering, Hokkaido University, Hokkaido 060-8628, Japan.

出版信息

Int J Mol Sci. 2020 Jun 30;21(13):4689. doi: 10.3390/ijms21134689.

Abstract

Due to their cost effectiveness, high safety, and eco-friendliness, zinc-ion batteries (ZIBs) are receiving much attention nowadays. In the production of rechargeable ZIBs, the cathode plays an important role. Manganese oxide (MnO) is considered the most promising and widely investigated intercalation cathode material. Nonetheless, MnO cathodes are subjected to challenging issues viz. limited capacity, low rate capability and poor cycling stability. It is seen that the MnO heterostructure can enable long-term cycling stability in different types of energy devices. Herein, a versatile chemical method for the preparation of MnO heterostructure on multi-walled carbon nanotubes (MNH-CNT) is reported. Besides, the synthesized MNH-CNT is composed of δ-MnO and γ-MnO. A ZIB using the MNH-CNT cathode delivers a high initial discharge capacity of 236 mAh g at 400 mA g, 108 mAh g at 1600 mA g and excellent cycling stability. A pseudocapacitive behavior investigation demonstrates fast zinc ion diffusion via a diffusion-controlled process with low capacitive contribution. Overall, the MNH-CNT cathode is seen to exhibit superior electrochemical performance. This work presents new opportunities for improving the discharge capacity and cycling stability of aqueous ZIBs.

摘要

由于成本效益高、安全性高和环保性,锌离子电池(ZIBs)如今受到了广泛关注。在可充电 ZIBs 的生产中,阴极起着重要作用。氧化锰(MnO)被认为是最有前途和广泛研究的插层阴极材料。然而,MnO 阴极存在容量有限、倍率性能差和循环稳定性差等问题。研究表明,MnO 异质结构可以使不同类型的能源设备实现长期循环稳定性。本文报道了一种在多壁碳纳米管(MNH-CNT)上制备 MnO 异质结构的通用化学方法。此外,合成的 MNH-CNT 由 δ-MnO 和 γ-MnO 组成。使用 MNH-CNT 阴极的 ZIB 在 400 mA g 时的初始放电容量为 236 mAh g,在 1600 mA g 时为 108 mAh g,具有出色的循环稳定性。赝电容行为研究表明,通过扩散控制过程实现了快速的锌离子扩散,电容贡献较低。总的来说,MNH-CNT 阴极表现出优异的电化学性能。这项工作为提高水系 ZIBs 的放电容量和循环稳定性提供了新的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c79f/7369720/ebb316e629d2/ijms-21-04689-g001.jpg

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