锰
电容器
微观结构
水溶液
材料科学
离子
铵
Boosting(机器学习)
氧气
无机化学
电化学
化学工程
化学
冶金
电气工程
计算机科学
电极
电压
工程类
物理化学
有机化学
机器学习
作者
Xinliang Han,Jie Zhang,Zuoshu Wang,Hussein A. Younus,Dewei Wang
出处
期刊:Rare Metals
[Springer Nature]
日期:2024-07-02
卷期号:43 (11): 5734-5746
被引量:21
标识
DOI:10.1007/s12598-024-02818-2
摘要
Abstract The aqueous ammonium ion (NH 4 + ) is a promising charge carrier in virtue of its safety, environmental friendliness, abundant resources and small hydrated ionic size. The exploration of NH 4 + host electrodes with good reversibility and large storage capacity to construct high‐performance ammonium‐ion hybrid capacitors (AIHCs), however, is still in its infancy. Herein, a facile etching technique is put forward to produce oxygen‐deficient MnO 2 (O d ‐MnO 2 ) as the electrode material for NH 4 + storage. According to the experimental and theoretical calculation results, the etching process not only creates more porosity, offering abundant active sites, but also generates abundant oxygen vacancies, which modify the structure of pristine MnO 2 , enhance charge storage capacity and boost ion diffusion kinetics. Consequently, O d ‐MnO 2 can deliver a specific capacity of 155 mAh·g −1 at 0.5 A·g −1 and a good long‐term cycling stability with 86.8% capacity maintained after 10,000 cycles at 5.0 A·g −1 . Additionally, the NH 4 + storage mechanism was evidenced by several ex‐situ characterization analyses. To examine the actual implementation of O d ‐MnO 2 as a positive electrode for NH 4 + full device, AIHCs are assembled with activated carbon functionalized with Fe 3 O 4 nanoparticles (Fe 3 O 4 @AC) as a negative electrode. A high specific capacitance of 184 F·g −1 at 0.5 A·g −1 , satisfactory energy density of 102 Wh·kg −1 at 500 W·kg −1 , a low self‐discharge rate and good cycling durability after 10,000 cycles are attained. The electrochemical performance of these AIHCs is comparable to or surpass those of traditional supercapacitors with metal ions as charge carriers, highlighting the advantages of structural modification in enhancing the NH 4 + storage performance.
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