Layered manganese dioxide nanoflowers with Cu2+and Bi3+ intercalation as high-performance cathode for aqueous zinc-ion battery

阴极 化学工程 电化学 水溶液 纳米花 材料科学 双锰矿 插层(化学) 吸附 电导率 无机化学 电池(电) 草酸盐 化学 电极 纳米技术 纳米结构 冶金 有机化学 功率(物理) 物理化学 工程类 物理 量子力学 氧化锰
作者
Fengni Long,Yanhong Xiang,Sinian Yang,Yuting Li,Hongxia Du,Yuqiu Liu,Xianwen Wu,Xiangsi Wu
出处
期刊:Journal of Colloid and Interface Science [Elsevier BV]
卷期号:616: 101-109 被引量:68
标识
DOI:10.1016/j.jcis.2022.02.059
摘要

For aqueous zinc ion batteries (AZIBs), birnessite MnO2 (δ-MnO2) has been intensively used as one of the most potential cathode materials due to its layered structure, which is conducive to reversible insertion/extraction of zinc ions. However, δ-MnO2 has not been attained for zinc ion storage performance because of its inferior conductivity as well as the undesirable structural degradation upon charge/discharge cycling. Herein, we have designed two kinds of cathode materials of Cu0.06MnO2·1.7H2O (CuMO) and Bi0.09MnO2·1.5H2O (BiMO) with nanoflower structure for the first time by a facile one-step hydrothermal method, which will be applied for high-performance AZIBs.The pre-intercalated metal ions and water molecules serve as pillars to sustain the layered structures, improving the stability of these materials. Particularly, the CuMO may experience a replacement reaction except the zinc ion insertion/extraction to form metallic Cu during the cycling process, which can enhance the diffusion rate of Zn2+, thus resulting in an excellent electronic conductivity and exhibiting remarkable specific capacities. Furthermore, a pseudo-capacitance that is derived from the surface-adsorbed Cu2+and Bi3+ also contributes to the improved electrochemical performances. The reversible capacity of CuMO is estimated as 350 mAh g-1 at 0.5 A g-1, which is much higher than that of pure δ-MnO2 (190 mAh g-1 at 0.5 A g-1). However, BiMO demonstrates long-term cycling stability, maintaining a capacity of 114.5 mAh g-1 even after 1100 charged-discharged cycles at 1 A g-1. The capacity retention is found to be as high as 98.6%, which is much higher than that of pure δ-MnO2 (53.8%). This can contribute to the development of high-performance AZIBs and the application of metal ion pre-intercalation methods in other areas.
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