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Coarsening-induced hierarchically interconnected porous carbon polyhedrons for stretchable ionogel-based supercapacitors

Authors
Kang, Min SeokHeo, IncheolCho, Kyung GookKyung, HyunaKim, Hee SooLee, Keun HyungYoo, Won Cheol
Issue Date
Mar-2022
Publisher
Elsevier BV
Keywords
HieArticlerarchically interconnected porous carbon; Coarsening effect; Facilitated ion-transport; Ionogel; Stretchable supercapacitor
Citation
Energy Storage Materials, v.45, pp 380 - 388
Pages
9
Indexed
SCIE
SCOPUS
Journal Title
Energy Storage Materials
Volume
45
Start Page
380
End Page
388
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/111258
DOI
10.1016/j.ensm.2021.12.001
ISSN
2405-8297
2405-8289
Abstract
Carbonaceous materials have received extensive attention as electrode materials for electrochemical energy storage systems owing to their superior features, including light weight, high electrical conductivity and specific surface area (SSA), tunable pore structures, and desirable surface properties. For ultrahigh-energy-density supercapacitors (SCs), hierarchically interconnected micro-/meso -/macroporous carbons (HICs) are desirable for both effective ion polarization and transport, especially when electrochemically stable but dynamically sluggish ionic liquids are employed as the electrolytes. Herein, we demonstrate coarsening-induced HIC polyhedrons with an ultrahigh SSA (3064 m(2) g(-1)) from polymer-infiltrated metal-organic frameworks (MOFs). The HIC-based SCs exhibit an outstanding capacitance of 268.4 F g(-1) with an ultrahigh energy density of 149 Wh kg(-1), which are comparable to the best values reported to date, indicating that expedited ion-transport via hierarchically interconnected large meso -/macropores affords maximum utilization of the micropores of the carbon electrodes. Furthermore, stretchable all-solid-state SCs operating at 120% strain with a very high areal capacitance of 33 mF cm(-2) and an energy density of 0.041 mWh cm(-2) are also demonstrated. These results provide a ubiquitous strategy for developing MOF-based hierarchically interconnected carbonaceous materials with ultrahigh SSA for high-performance SCs compatible with stretchable and wearable electronic devices.
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COLLEGE OF SCIENCE AND CONVERGENCE TECHNOLOGY > DEPARTMENT OF CHEMICAL AND MOLECULAR ENGINEERING > 1. Journal Articles

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ERICA 공학대학 (ERICA 에너지바이오학과)
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