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Coiled Conformation Hollow Carbon Nanosphere Cathode and Anode for High Energy Density and Ultrafast Chargeable Hybrid Energy Storage

Authors
Kim, Gi HwanChoi, Won HoChoi, Jae WonKim, Keon-HanPark, Dong GyuPark, Min GyuKim, Min GyuJang, HaeseongKim, Un-HyuckKang, Jeung Ku
Issue Date
Apr-2022
Publisher
AMER CHEMICAL SOC
Keywords
coiled conformation resin units; multiporous conductive hollow carbon nanospheres; high energy density; ultrafast chargeable capability; hybrid energy storages
Citation
ACS NANO, v.16, no.4, pp 6552 - 6564
Pages
13
Journal Title
ACS NANO
Volume
16
Number
4
Start Page
6552
End Page
6564
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/69292
DOI
10.1021/acsnano.2c00922
ISSN
1936-0851
1936-086X
Abstract
Lithium-ion batteries and pseudocapacitors are nowadays popular electrochemical energy storage for many applications, but their cathodes and anodes are still limited to accommodate rich redox ions not only for high energy density but also sluggish ion diffusivity and poor electron conductivity, hindering fast recharge. Here, we report a strategy to realize high-capacity/high-rate cathode and anode as a solution to this challenge. Multiporous conductive hollow carbon (HC) nanospheres with microporous shells for high capacity and hollow cores/mesoporous shells for rapid ion transfer are synthesized as cathode materials using quinoid:benzenoid (Q:B) unit resins of coiled conformation, leading to similar to 5-fold higher capacities than benzenoid:benzenoid resins of linear conformation. Also, Ge-embedded Q:B HC nanospheres are derived as anode materials. The atomic configuration and energy storage mechanism elucidate the existence of mononuclear GeOx units giving similar to 7-fold higher ion diffusivity than bulk Ge while suppressing volume changes during long ion-insertion/desertion cycles. Moreover, hybrid energy storage with a Q:B HC cathode and Ge-Q:B HC anode exploit the advantages of capacitor-type cathode and battery-type anode electrodes, as exhibited by battery-compatible high energy density (up to 285 Wh kg(-1)) and capacitor-compatible ultrafast rechargeable power density (up to 22 600 W kg(-1)), affording recharge within a minute.
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대학원 (스마트시티학과)
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