TY - JOUR
T1 - Nonflammable Supramolecular Polymer Electrolytes for Flexible and High-Performance Supercapacitor Applications
AU - Gunday, Seyda Tugba
AU - Cevik, Emre
AU - Bozkurt, Ayhan
AU - Iqbal, Arfa
AU - Asiri, Sarah
AU - AlGhamdi, Amal
AU - Almofleh, Atheel
AU - Qahtan, Talal F.
AU - Al-Fares, Fatimah Ali Youssef
AU - Isık, Omer
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/12/21
Y1 - 2023/12/21
N2 - The present work reports on high-performance and flexible supercapacitors assembled using a cost-effective and nonflammable electrolyte with activated carbon electrodes. The electrolyte was prepared by rapidly blending a ternary system comprising poly(vinyl alcohol)(P)/glycerol (G)/boric acid (B) hydrogel doped with LiNO3 (Li),─henceforth denoted as PGBLi,─at ambient temperature. Once partial in situ cross-linking occurred between P and B, the polymer electrolytes were cast onto the carbon electrodes. The doped PGBLi hydrogel electrolyte retained excellent flexibility and high ionic conductivity in a broad temperature domain, while the performance of the assembled supercapacitor devices measured at low and high temperatures confirmed the high stability. Moreover, the supercapacitor exhibited 396 F g-1 specific capacitance at 1 A g-1 and 27.41 Wh kg-1, obtained at a power density of 118 W kg-1, while 95.4% capacitive performance was maintained after 10 000 cycles, indicating adequate cyclic stability. Thus, the as-doped PGBLi hydrogel electrolyte is inexpensive, biocompatible, and nonflammable and meets the criteria for flexible wearable electronics; it can be considered for a variety of applications.
AB - The present work reports on high-performance and flexible supercapacitors assembled using a cost-effective and nonflammable electrolyte with activated carbon electrodes. The electrolyte was prepared by rapidly blending a ternary system comprising poly(vinyl alcohol)(P)/glycerol (G)/boric acid (B) hydrogel doped with LiNO3 (Li),─henceforth denoted as PGBLi,─at ambient temperature. Once partial in situ cross-linking occurred between P and B, the polymer electrolytes were cast onto the carbon electrodes. The doped PGBLi hydrogel electrolyte retained excellent flexibility and high ionic conductivity in a broad temperature domain, while the performance of the assembled supercapacitor devices measured at low and high temperatures confirmed the high stability. Moreover, the supercapacitor exhibited 396 F g-1 specific capacitance at 1 A g-1 and 27.41 Wh kg-1, obtained at a power density of 118 W kg-1, while 95.4% capacitive performance was maintained after 10 000 cycles, indicating adequate cyclic stability. Thus, the as-doped PGBLi hydrogel electrolyte is inexpensive, biocompatible, and nonflammable and meets the criteria for flexible wearable electronics; it can be considered for a variety of applications.
UR - https://www.scopus.com/pages/publications/85180071069
U2 - 10.1021/acs.energyfuels.3c03614
DO - 10.1021/acs.energyfuels.3c03614
M3 - Article
AN - SCOPUS:85180071069
SN - 0887-0624
VL - 37
SP - 19939
EP - 19949
JO - Energy and Fuels
JF - Energy and Fuels
IS - 24
ER -