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一种集成了MOF衍生VO电极的高着色效率多色超级电容器。

A multi-chromic supercapacitor of high coloration efficiency integrating a MOF-derived VO electrode.

作者信息

Dewan Anweshi, Narayanan Remya, Thotiyl Musthafa Ottakam

机构信息

Department of Physics and Centre for Energy Science, Indian Institute of Science Education and Research Pune, 411008, India.

Department of Environmental Science, Savitribai Phule Pune University, Pune, 411007, India.

出版信息

Nanoscale. 2022 Dec 1;14(46):17372-17384. doi: 10.1039/d2nr04841h.

Abstract

Modern technological trends in smart electronic devices demand more intelligent automation. Simultaneous integration of energy storage and multicolor electrochromism in a single device improves user-device interfacing based on a salient human-readable output. In this work, primarily metal-organic framework (MOF) derived VO was synthesized which, as an electrochromic material, shows high optical modulation of 35% at 485 nm, with very fast switching speeds (2.9/3.4 s for coloring/bleaching). The multiple coloration states of the VO electrode make it worthy for further integration as a smart negative electrode in a multicolored electrochromic asymmetric supercapacitor, where the electrochromic polyaniline electrode serves as the counter electrode. The device demonstrates a high coloration efficiency of 137.2 cm C and an areal capacitance of 12.27 mF cm and an energy density of 2.21 × 10 mW h cm at a current density of 0.05 mA cm. By virtue of its different chromatic states during charging and discharging, smart visual tracking of the state of charge of the supercapacitor can be realized. Such a design of energy storage devices will have promising practical application in futuristic smart multifunctional electronic devices.

摘要

智能电子设备的现代技术趋势需要更智能的自动化。在单个设备中同时集成能量存储和多色电致变色功能,可基于显著的人类可读输出改善用户与设备的交互。在这项工作中,主要合成了源自金属有机框架(MOF)的VO,作为一种电致变色材料,它在485nm处显示出35%的高光调制率,具有非常快的切换速度(着色/漂白分别为2.9/3.4秒)。VO电极的多种着色状态使其有价值进一步集成到多色电致变色不对称超级电容器中作为智能负极,其中电致变色聚苯胺电极用作对电极。该器件在0.05mA/cm的电流密度下显示出137.2cm/C的高着色效率、12.27mF/cm²的面积电容和2.21×10⁻³mW h/cm²的能量密度。凭借其在充电和放电过程中的不同色度状态,可以实现超级电容器充电状态的智能视觉跟踪。这种储能设备的设计在未来的智能多功能电子设备中将有广阔的实际应用前景。

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