TY - JOUR
T1 - Flexible High-Energy-Density Hybrid Supercapacitors with Alkaline Hydrogel Electrolytes
AU - Ni, Mengying
AU - Ma, Chengcai
AU - Huang, Hailong
AU - Han, Lu
AU - Fu, Xiaobin
AU - Yang, Zhongli
AU - Li, Jingwen
AU - Pan, Likun
AU - Xu, Min
N1 - Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/6/27
Y1 - 2022/6/27
N2 - Ionic hydrogel electrolyte supercapacitors are the next-generation flexible wearable devices for energy storage, which have superb conductivity and mechanical performance, thus arousing great attention. However, existing hydrogel electrolyte supercapacitors exhibit obvious limitations in electrochemical performance (e.g., narrow working voltage range, low power density and energy density, and unstable cycle life at high current density). In this work, an alkaline ionic conductive hydrogel (PEGMA) was prepared by copolymerization of acrylamide (AM), ethylene glycol methyl ether acrylate (MEA), and poly(ethylene glycol) methyl ether acrylate (PEGA), and potassium hydroxide (KOH) was selected as a conductive substance to form hydrogel electrolytes that could be used in flexible hybrid supercapacitors. The assembled supercapacitor (PEGMA-ZHS) exhibited superb electrochemical properties, such as a high energy density (356.6 Wh kg-1) at 2647.4 W kg-1powder density and a wide (0.2-2.0 V) operating voltage range and high stability with a capacity retention of nearly 100% after charging/discharging for 10,000 cycles at 10 A g-1current density. The strategy would make progress in exploring hydrogel-based flexible supercapacitors with excellent electrochemical performance for electronic devices.
AB - Ionic hydrogel electrolyte supercapacitors are the next-generation flexible wearable devices for energy storage, which have superb conductivity and mechanical performance, thus arousing great attention. However, existing hydrogel electrolyte supercapacitors exhibit obvious limitations in electrochemical performance (e.g., narrow working voltage range, low power density and energy density, and unstable cycle life at high current density). In this work, an alkaline ionic conductive hydrogel (PEGMA) was prepared by copolymerization of acrylamide (AM), ethylene glycol methyl ether acrylate (MEA), and poly(ethylene glycol) methyl ether acrylate (PEGA), and potassium hydroxide (KOH) was selected as a conductive substance to form hydrogel electrolytes that could be used in flexible hybrid supercapacitors. The assembled supercapacitor (PEGMA-ZHS) exhibited superb electrochemical properties, such as a high energy density (356.6 Wh kg-1) at 2647.4 W kg-1powder density and a wide (0.2-2.0 V) operating voltage range and high stability with a capacity retention of nearly 100% after charging/discharging for 10,000 cycles at 10 A g-1current density. The strategy would make progress in exploring hydrogel-based flexible supercapacitors with excellent electrochemical performance for electronic devices.
KW - alkaline electrolyte
KW - energy storage device
KW - flexible wearable device
KW - ionic conductive hydrogel
KW - supercapacitor
UR - https://www.scopus.com/pages/publications/85131868693
U2 - 10.1021/acsaem.2c00334
DO - 10.1021/acsaem.2c00334
M3 - 文章
AN - SCOPUS:85131868693
SN - 2574-0962
VL - 5
SP - 6724
EP - 6733
JO - ACS Applied Energy Materials
JF - ACS Applied Energy Materials
IS - 6
ER -