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基于金属掺杂氧化镍的可靠、高性能电致变色超级电容器

Reliable, High-Performance Electrochromic Supercapacitors Based on Metal-Doped Nickel Oxide.

作者信息

Kim Seon Yeong, Yun Tae Yong, Yu Kyeong Su, Moon Hong Chul

机构信息

Department of Chemical Engineering, University of Seoul, Seoul 02504, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2020 Nov 18;12(46):51978-51986. doi: 10.1021/acsami.0c15424. Epub 2020 Nov 9.

Abstract

Herein, high-performance, reliable electrochromic supercapacitors (ECSs) are proposed based on tungsten trioxide (WO) and nickel oxide (NiO) films. To maximize device performance and stability, the stoichiometric balance between anode and cathode materials is controlled by carefully adjusting the thickness of the anodic NiO film while fixing the thickness of WO to ∼660 nm. Then, a small amount (≤10 mol %) of metal (e.g., copper) is doped into the NiO film, improving the electrical conductivity and electrochemical activity. At a Cu doping level of 7 mol %, the resulting ECS exhibited the highest performance, including a high areal capacitance (∼14.9 mF/cm), excellent coulombic efficiency (∼99%), wide operating temperature range (0-80 °C), reliable operation with high charging/discharging cyclic stability (>10,000 cycles), and good self-discharging durability. Simultaneously, the change in transmittance of the device is well synchronized with the galvanostatic charging/discharging curve by which the real-time energy storage status is visually indicated. Furthermore, the practical feasibility of the device is successfully demonstrated. These results imply that the ECS fabricated in this work is a promising potential energy storage platform and an attractive component for future electronics.

摘要

在此,基于三氧化钨(WO)和氧化镍(NiO)薄膜提出了高性能、可靠的电致变色超级电容器(ECS)。为了使器件性能和稳定性最大化,在将WO的厚度固定为约660 nm的同时,通过仔细调整阳极NiO薄膜的厚度来控制阳极和阴极材料之间的化学计量平衡。然后,将少量(≤10 mol%)的金属(如铜)掺杂到NiO薄膜中,提高其电导率和电化学活性。在7 mol%的铜掺杂水平下,所得的ECS表现出最高的性能,包括高面积电容(约14.9 mF/cm)、优异的库仑效率(约99%)、宽工作温度范围(0 - 80°C)、具有高充放电循环稳定性(>10,000次循环)的可靠运行以及良好的自放电耐久性。同时,器件的透过率变化与恒电流充放电曲线很好地同步,通过该曲线可以直观地显示实时储能状态。此外,成功证明了该器件的实际可行性。这些结果表明,本文制备的ECS是一个有前途的潜在储能平台,也是未来电子产品中一个有吸引力的组件。

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