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Scalable Production of Ultrafine Polyaniline Fibres for Tactile Organic Electrochemical Transistors

Overview
Journal Nat Commun
Specialty Biology
Date 2022 Apr 20
PMID 35440125
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Abstract

The development of continuous conducting polymer fibres is essential for applications ranging from advanced fibrous devices to frontier fabric electronics. The use of continuous conducting polymer fibres requires a small diameter to maximize their electroactive surface, microstructural orientation, and mechanical strength. However, regularly used wet spinning techniques have rarely achieved this goal due primarily to the insufficient slenderization of rapidly solidified conducting polymer molecules in poor solvents. Here we report a good solvent exchange strategy to wet spin the ultrafine polyaniline fibres. The slow diffusion between good solvents distinctly decreases the viscosity of protofibers, which undergo an impressive drawing ratio. The continuously collected polyaniline fibres have a previously unattained diameter below 5 µm, high energy and charge storage capacities, and favorable mechanical performance. We demonstrated an ultrathin all-solid organic electrochemical transistor based on ultrafine polyaniline fibres, which operated as a tactile sensor detecting pressure and friction forces at different levels.

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References
1.
Rivnay J, Inal S, Collins B, Sessolo M, Stavrinidou E, Strakosas X . Structural control of mixed ionic and electronic transport in conducting polymers. Nat Commun. 2016; 7:11287. PMC: 4838877. DOI: 10.1038/ncomms11287. View

2.
Wang X, Meng X, Zhu Y, Ling H, Chen Y, Li Z . A sub-1V, microwatt power-consumption iontronic pressure sensor based on organic electrochemical transistors. IEEE Electron Device Lett. 2021; 42(1):46-49. PMC: 7978230. DOI: 10.1109/led.2020.3042310. View

3.
Vitale F, Summerson S, Aazhang B, Kemere C, Pasquali M . Neural stimulation and recording with bidirectional, soft carbon nanotube fiber microelectrodes. ACS Nano. 2015; 9(4):4465-74. DOI: 10.1021/acsnano.5b01060. View

4.
Inal S, Malliaras G, Rivnay J . Benchmarking organic mixed conductors for transistors. Nat Commun. 2017; 8(1):1767. PMC: 5701155. DOI: 10.1038/s41467-017-01812-w. View

5.
Lu X, Zeng Y, Yu M, Zhai T, Liang C, Xie S . Oxygen-deficient hematite nanorods as high-performance and novel negative electrodes for flexible asymmetric supercapacitors. Adv Mater. 2014; 26(19):3148-55. DOI: 10.1002/adma.201305851. View