Issue 33, 2022

High-performance all-solid-state electrochromic asymmetric Zn-ion supercapacitors for visualization of energy storage devices

Abstract

Electrochromic Zn-ion supercapacitors (EZSCs) integrate energy storage and electrochromic function into one platform, providing promising potential for intelligent visualization of energy storage devices. A challenge for the practical applications of EZSCs is to explore electrodes with ultra-robust properties that suppress performance deterioration and irreversible structural damage after ultralong-term electrochemical testing even in a wide temperature environment. Here, a monoclinic WO3 electrode presents ultralong cycle stability (over 15 000 cycles) and superb optical modulation (up to 72.5%). Notably, the first-principles calculations and experimental results reveal that the ultralong stability stems from the ultra-robust monoclinic structure, and surface capacitance-controlled and fast kinetic behaviours. Furthermore, a novel all-solid-state electrochromic asymmetric Zn-ion supercapacitor (EAZS) is successfully assembled by matching electrochromic electrodes (MnO2/WO3). The EAZS delivers a wide voltage window (2 V), high energy/power density (1.25 W h cm−3/7.02 W cm−3), superb colouring efficiency (89.5 cm2 C−1) and especially ultralong cycle life (over 12 000 cycles). Notably, the EAZS also shows remarkable durability and long-term cycling stability over a wide temperature range from 15 to 70 °C. We imagine that this work can provide a novel avenue to construct smart energy storage systems for future portable electronic devices and fast-charging green electric-buses.

Graphical abstract: High-performance all-solid-state electrochromic asymmetric Zn-ion supercapacitors for visualization of energy storage devices

Supplementary files

Article information

Article type
Paper
Submitted
25 May 2022
Accepted
20 Jul 2022
First published
23 Jul 2022

J. Mater. Chem. A, 2022,10, 17326-17337

High-performance all-solid-state electrochromic asymmetric Zn-ion supercapacitors for visualization of energy storage devices

C. Deng, K. Zhang, L. Liu, Z. He, J. Huang, T. Wang, Y. Liu, X. He, K. Du and Y. Yi, J. Mater. Chem. A, 2022, 10, 17326 DOI: 10.1039/D2TA04198G

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