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Cited 64 time in webofscience Cited 70 time in scopus
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Sonochemically exfoliated polymer-carbon nanotube interface for high performance supercapacitorsopen access

Authors
Bathula, ChinnaRabani, IqraKadam, AbhijitOpoku, HenryPatil, Supriya A.Shreshta, Nabeen K.Hwang, Jung-HoonSeo, Young-SooKim, Hyun-Seok
Issue Date
Jan-2022
Publisher
Elsevier Inc.
Keywords
Ultrasonication; Diketopyrrole; MWCNT; Symmetric supercapacitor; Cycling stability
Citation
Journal of Colloid and Interface Science, v.606, pp 1792 - 1799
Pages
8
Indexed
SCIE
SCOPUS
Journal Title
Journal of Colloid and Interface Science
Volume
606
Start Page
1792
End Page
1799
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/3701
DOI
10.1016/j.jcis.2021.08.136
ISSN
0021-9797
1095-7103
Abstract
Energy storage characteristics of organic molecules continue to attract attention for supercapacitor applications, as they offer simple processing and can be employed for flexible devices. The current study utilized the ultrasonically driven exfoliation to obtain poly diketo pyrrolopyrrole-thieno thiophene (PDPT) and multiwalled carbon nanotube (CNT) composite, subsequently fabricated a PDPT donor-p-acceptor heterojunction with CNT and investigated energy storage applications. The composite was characterized using series of standard analytical techniques. Morphology indicated well alighted CNT tubes on PDPT polymer nanosheets with an effective interface, providing efficient electrochemical regions, enabling fast charge transfer between PDPT and CNT. We also investigated the PDPT-CNT composite electrochemical behavior, achieving 319.2 and 105.7F.g(-1) capacitances for PDPT-CNT and PDPT at 0.5 A.g(-1) current density for three electrode configurations; and 126 and 42F.g(-1) for symmetric structures, respectively. Experimental results confirmed that PDPT-CNT composite electrodes achieved two fold the capacitance compared with PDPT alone. The hypothesis and synthetic approach provide an excellent candidate for conjugated polymers with carbon nanotubes and energy related devices. (C) 2021 Elsevier Inc. All rights reserved.
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College of Engineering > Department of Electronics and Electrical Engineering > 1. Journal Articles
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