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二氧化锰纳米颗粒锚定的多壁碳纳米管作为锂离子电池潜在的负极材料

MnO₂ Nanoparticles Anchored Multi Walled Carbon Nanotubes as Potential Anode Materials for Lithium Ion Batteries.

作者信息

Umar Ahmad, Ahmed Faheem, Ibrahim Ahmed A, Algadi Hassan, Albargi Hasan B, Alhmami Mohsen Ali M, Almas Tubia, Mohammed Ayeda Y A, Abuhimd Hatem, Castañeda L

机构信息

Department of Chemistry, Faculty of Science and Arts, Najran University, Najran-11001, Kingdom of Saudi Arabia.

Department of Physics, College of Science, King Faisal University, Al-Ahsa 31982, Kingdom of Saudi Arabia.

出版信息

J Nanosci Nanotechnol. 2021 Oct 1;21(10):5296-5301. doi: 10.1166/jnn.2021.19440.

Abstract

Herein, we report a facile hydrothermal synthesis of MnO₂ nanoparticles anchored multi walled carbon nanotubes (MnO₂@MWCNTs) as potential anode materials for lithium-ion (Li-ion) batteries. The prepared MnO₂@MWCNTs were characterized by several techniques which confirmed the formation of MnO₂ nanoparticles anchored MWCNTs. The X-ray diffraction and Raman-scattering analyses of the prepared material further revealed the effective synthesis of MnO₂@MWCNTs. The fabricated Li-ion battery based on MnO₂@MWCNTs exhibited a reversible capacity of ~823 mAhg at a current density of 100 mAg for the first cycle, and delivered a capacity of ~421 mAhg for the 60 cycles. The coulombic efficiency was found to be ~100% which showed excellent reversible charge-discharge behavior. The outstanding performance of the MnO₂@MWCNTs anode for the Li-ion battery can be attributed to the distinctive morphology of the MnO₂ nanoparticles anchored MWCNTs that facilitated the fast transport of lithium ions and electrons and accommodated a broad volume change during the cycles of charge/discharge.

摘要

在此,我们报道了一种简便的水热合成法,用于制备锚定有多壁碳纳米管的二氧化锰纳米颗粒(MnO₂@MWCNTs),作为锂离子电池的潜在阳极材料。通过多种技术对制备的MnO₂@MWCNTs进行了表征,证实了锚定有多壁碳纳米管的二氧化锰纳米颗粒的形成。对制备材料的X射线衍射和拉曼散射分析进一步揭示了MnO₂@MWCNTs的有效合成。基于MnO₂@MWCNTs制造的锂离子电池在第一个循环中,在100 mAg的电流密度下表现出约823 mAhg的可逆容量,并且在60个循环中提供了约421 mAhg的容量。发现库仑效率约为100%,这表明其具有优异的可逆充放电行为。MnO₂@MWCNTs阳极在锂离子电池中的出色性能可归因于锚定有多壁碳纳米管的二氧化锰纳米颗粒的独特形态,这种形态促进了锂离子和电子的快速传输,并在充放电循环过程中适应了较大的体积变化。

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