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Protic Ionic Liquids for Intrinsically Stretchable Conductive Polymers

Title
Protic Ionic Liquids for Intrinsically Stretchable Conductive Polymers
Author(s)
Kim, MinjiLee, Seung YeobKim, JihyunChoi, ChangwonLansac, YvesAhn, HyungjuPark, SoheeJang, Yun HeeLee, Seoung HoLee, Byoung Hoon
Issued Date
2023-01
Citation
ACS Applied Materials & Interfaces, v.15, no.2, pp.3202 - 3213
Type
Article
Author Keywords
conductive polymerPEDOTPSSionic liquidion exchangestretchable electrode
Keywords
PARTICLE MESH EWALDMOLECULAR-DYNAMICSTHERMOELECTRIC PROPERTIESSOFT ACIDSFORCE-FIELDBASES HSABPEDOTPSSSTRAINFILMSHARD
ISSN
1944-8244
Abstract
Inspired by the classic hard-soft acid-base theory and intrigued by a theoretical prediction of spontaneous ion exchange between poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) and hard-cation-soft-anion ionic liquid (IL), we treat PEDOT:PSS with a new IL composed of a protic (i.e., extremely hard) cation (3-methylimidazolium, p-MIM+) and an extremely soft anion (tetracyanoborate, TCB-). In fact, this protic IL (p-MIM:TCB) accomplishes the same levels of ion-exchange-mediated PEDOT-PSS separation, PEDOT-rich nanofibril formation, and electrical conductivity enhancement (∼2500 S/cm) as its aprotic counterpart (EMIM:TCB with 1-ethyl-3-methylimidazolium), the best IL used for this purpose so far. Furthermore, p-MIM:TCB significantly outperforms EMIM:TCB in terms of improving the stretchability (i.e., the highest tensile strain) of the PEDOT:PSS thin film. This enhancement is a result of the aromatic and protic cation p-MIM+, which acts as a molecular adhesive holding the exchanged ion pairs (PEDOT+:TCB- - -p-MIM+:PSS-) via ionic intercalation (at the surface of TCB-decorated PEDOT+ clusters) and hydrogen bonding (to PSS-), in which washing p-MIM+ out of the film degrades the stretchability while keeping the morphology. Our results offer molecular-level insight into the morphological, electrical, and mechanical properties of PEDOT:PSS and a molecular-interaction-based enhancement strategy that can be used for intrinsically stretchable conductive polymers. © 2022 American Chemical Society.
URI
http://hdl.handle.net/20.500.11750/17295
DOI
10.1021/acsami.2c17376
Publisher
American Chemical Society
Related Researcher
  • 장윤희 Jang, Yun Hee
  • Research Interests Multiscale molecular modeling (quantum mechanics calculation; molecular dynamics simulation) : Supercomputer-assisted molecular-level understanding of materials and their chemistry; which leads to rational design of high-performance organic-inorganic-hybrid materials for clean and renewable energy as well as low-energy-consumption electronic devices
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Department of Energy Science and Engineering CMMM Lab(Curious Minds Molecular Modeling Laboratory) 1. Journal Articles

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