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High-Density, Stretchable, All-Solid-State Microsupercapacitor Arrays

Authors
Hong, Soo YeongYoon, JangyeolJin, Sang WooLim, YeinLee, Seung-JungZi, GoangseupHa, Jeong Sook
Issue Date
9월-2014
Publisher
AMER CHEMICAL SOC
Keywords
stretchable microsupercapacitor array; layer-by-layer assembly; high density; all-solid-state supercapacitor; embedded interconnection; liquid metal
Citation
ACS NANO, v.8, no.9, pp.8844 - 8855
Indexed
SCIE
SCOPUS
Journal Title
ACS NANO
Volume
8
Number
9
Start Page
8844
End Page
8855
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/97509
DOI
10.1021/nn503799j
ISSN
1936-0851
Abstract
We report on the successful fabrication of stretchable microsupercapacitor (MSC) arrays on a deformable polymer substrate that exhibits high electrochemical performance even under mechanical deformation such as bending, twisting, and uniaxial strain of up to 40%. We designed the deformable substrate to minimize the strain on MSCs by adopting a heterogeneous structure consisting of stiff PDMS islands (on which MSCs are attached) and a soft thin film (mixture of Ecoflex and PDMS) between neighboring PDMS islands. Finite element method analysis of strain distribution showed that an almost negligible strain of 0.47% existed on the PDMS islands but a concentrated strain of 107% was present on the soft thin film area under a uniaxial strain of 40%. The use of an embedded interconnection of the liquid metal Galinstan helped simplify the fabrication and provided mechanical stability under deformation. Furthermore, double-sided integration of MSCs increased the capacitance to twice that of MSCs on a conventional planar deformable substrate. In this study, planar-type MSCs with layer-by-layer assembled hybrid thin film electrodes of MWNT/Mn3O4 and PVA-H3PO4 electrolyte were fabricated; when they are integrated into a circuit, these MSCs increase the output voltage beyond the potential of the electrolyte used. Therefore, various LEDs that require high voltages can be operated under a high uniaxial strain of 40% without any decrease in their brightness. The results obtained in this study demonstrate the high potential of our stretchable MSC arrays for their application as embedded stretchable energy storage devices in bioimplantable and future wearable nanoelectronics.
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