Electrochemically activated 3D Mn doped NiCo hydroxide electrode materials toward high-performance supercapacitors

超级电容器 电容 材料科学 电极 电化学 兴奋剂 氢氧化物 硫化物 化学工程 纳米技术 金属氢氧化物 储能 金属 光电子学 化学 物理化学 冶金 物理 工程类 功率(物理) 量子力学
作者
Faxue Lu,Yajun Ji,Dong Shi,Junnan Yao,Lijun Pei
出处
期刊:Journal of Colloid and Interface Science [Elsevier BV]
卷期号:641: 510-520 被引量:64
标识
DOI:10.1016/j.jcis.2023.03.081
摘要

Metal doping and electrochemical reconstruction had been demonstrated to play a significant role in the preparation of advanced electrode materials, which is helpful to achieve high-performance supercapacitors. However, there was no report about the combination of two technologies to construct electrode materials and their applications in supercapacitors. Herein, a rational Mn doped NiCo sulfide compound with open structure composed of 2D ultra-thin nanosheets was designed via a Mn doping route. In order to further improve the energy storage performance of the resulted product, we adopted a simple electrochemical activation strategy to reconstruct it. It was found that the reconstructed sample not only exhibited an irreversible evolution of structure (from 2D sheet to 3D channel), but also the phase transformation (from metal sulfide to metal hydroxide). Benefiting from the stable 3D curved structure with numerous channels, multitudinous charge transfer provided by numerous valence states of metals and copious active sites by low crystalline state, the in-situ self-reconstructed sample exhibited superior capacitance. In details, the optimized product delivered excellent specific capacitance of 1462C g-1 (3655F/g) at 1 A g-1 and high rate capability of 66 % even at 5 A g-1. Moreover, the corresponding assembled asymmetric supercapacitor exhibited an excellent energy density of 141.8 Wh kg-1 at a power density of 850.1 W kg-1, and the capacitance retention rate was 96.6 % even after 5000 cycles, which was distinctly superior than thoseofthe previous similarmaterialsreported. In a word, this work provided a feasible and effective strategy to construct 3D Mn doped NiCo hydroxide electrode materials toward high-performance supercapacitors.
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