TY - JOUR
T1 - Ionic Liquid Containing Block Copolymer Dielectrics : Designing for High-Frequency Capacitance, Low-Voltage Operation, and Fast Switching Speeds
AU - Peltekoff, Alexander J.
AU - Brixi, Samantha
AU - Niskanen, Jukka
AU - Lessard, Benoît H.
N1 - Funding Information:
The Natural Sciences and Engineering Research Council of Canada (NSERC RGPIN-2020-04079 to B.H.L) and the University of Ottawa are acknowledged for financial support. The research was undertaken, in part, thanks to funding from the Canada Research Chair program, of which B.H.L is a member. The authors would like to thank Marcia Reid, Carmen Adrei, and Andreas Korinek (Canadian Centre for Electron Microscopy, McMaster University) for cross-sectional TEM sample preparation and imaging. The authors would also like to thank Marc Dubé (University of Ottawa) for donating BlocBuilder-MA, which was originally acquired from Arkema and Daniel Fortin (Université de Sherbrooke) for SAXS measurements. We are also grateful to Ontario government for the Queen Elizabeth II Graduate Scholarship in Science and Technology (QEII GSST) to A.J.P.
Publisher Copyright:
© 2021 American Chemical Society. All rights reserved.
PY - 2021/7/26
Y1 - 2021/7/26
N2 - Polymerized ionic liquids (PILs) are a potential solution to the large-scale production of low-power consuming organic thin-film transistors (OTFTs). When used as the device gating medium in OTFTs, PILs experience a double-layer capacitance that enables thickness independent, low-voltage operation. PIL microstructure, polymer composition, and choice of anion have all been reported to have an effect on device performance, but a better structure property relationship is still required. A library of 27 well-defined, poly(styrene)-b-poly(1-(4-vinylbenzyl)-3-butylimidazolium-random-poly(ethylene glycol) methyl ether methacrylate) (poly(S)-b-poly(VBBI+[X]-r-PEGMA)) block copolymers, with varying PEGMA/VBBI+ratios and three different mobile anions (where X = TFSI-, PF6-or BF4-), were synthesized, characterized and integrated into OTFTs. The fraction of VBBI+in the poly(VBBI+[X]-r-PEGMA) block ranged from to 100 mol % and led to glass transition temperatures (Tg) between -7 and 55 °C for that block. When VBBI+composition was equal or above 50 mol %, the block copolymer self-assembled into well-ordered domains with sizes between 22 and 52 nm, depending on the composition and choice of anion. The block copolymers double-layer capacitance (CDL) and ionic conductivity (σ) were found to correlate to the polymer self-assembly and the Tgof the poly(VBBI+[X]-r-PEGMA) block. Finally, the block copolymers were integrated into OTFTs as the gating medium that led to n-type devices with threshold voltages of 0.5-1.5 V while maintaining good electron mobilities. We also found that the greater the σ of the PIL, the greater the OTFT operating frequency could reach. However, we also found that CDLis not strictly proportional to OTFT output currents.
AB - Polymerized ionic liquids (PILs) are a potential solution to the large-scale production of low-power consuming organic thin-film transistors (OTFTs). When used as the device gating medium in OTFTs, PILs experience a double-layer capacitance that enables thickness independent, low-voltage operation. PIL microstructure, polymer composition, and choice of anion have all been reported to have an effect on device performance, but a better structure property relationship is still required. A library of 27 well-defined, poly(styrene)-b-poly(1-(4-vinylbenzyl)-3-butylimidazolium-random-poly(ethylene glycol) methyl ether methacrylate) (poly(S)-b-poly(VBBI+[X]-r-PEGMA)) block copolymers, with varying PEGMA/VBBI+ratios and three different mobile anions (where X = TFSI-, PF6-or BF4-), were synthesized, characterized and integrated into OTFTs. The fraction of VBBI+in the poly(VBBI+[X]-r-PEGMA) block ranged from to 100 mol % and led to glass transition temperatures (Tg) between -7 and 55 °C for that block. When VBBI+composition was equal or above 50 mol %, the block copolymer self-assembled into well-ordered domains with sizes between 22 and 52 nm, depending on the composition and choice of anion. The block copolymers double-layer capacitance (CDL) and ionic conductivity (σ) were found to correlate to the polymer self-assembly and the Tgof the poly(VBBI+[X]-r-PEGMA) block. Finally, the block copolymers were integrated into OTFTs as the gating medium that led to n-type devices with threshold voltages of 0.5-1.5 V while maintaining good electron mobilities. We also found that the greater the σ of the PIL, the greater the OTFT operating frequency could reach. However, we also found that CDLis not strictly proportional to OTFT output currents.
KW - block copolymer self-assembly
KW - electrolyte-gated transistor (EGT)
KW - high capacitance dielectrics
KW - nitroxide-mediated polymerization (NMP)
KW - organic thin-film transistor (OTFT)
KW - poly(ionic liquid)
UR - http://www.scopus.com/inward/record.url?scp=85126889769&partnerID=8YFLogxK
U2 - 10.1021/jacsau.1c00133
DO - 10.1021/jacsau.1c00133
M3 - Article
AN - SCOPUS:85126889769
SN - 2691-3704
VL - 1
SP - 1044
EP - 1056
JO - JACS Au
JF - JACS Au
IS - 7
ER -