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High-Current-Density Organic Electrochemical Diodes Enabled by Asymmetric Active Layer Designoa mark
  • Kim, Youngseok ;
  • Kim, Gunwoo ;
  • Ding, Bowen ;
  • Jeong, Dahyun ;
  • Lee, Inho ;
  • Park, Sungjun ;
  • Kim, Bumjoon J. ;
  • McCulloch, Iain ;
  • Heeney, Martin ;
  • Yoon, Myung Han
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Publication Year
2022-02-01
Publisher
John Wiley and Sons Inc
Citation
Advanced Materials, Vol.34
Keyword
mixed ionic–electronic conductorsorganic diodesorganic electrochemical diodesorganic electrochemical transistorsorganic rectifiers
Mesh Keyword
Active LayerElectrochemical performanceElectrochemicalsHigh current densitiesImplantable electrodesMechanical flexibilityMixed ionic-electronic conductorsNeural recordingsOperational stabilityOrganics
All Science Classification Codes (ASJC)
Materials Science (all)Mechanics of MaterialsMechanical Engineering
Abstract
Owing to their outstanding electrical/electrochemical performance, operational stability, mechanical flexibility, and decent biocompatibility, organic mixed ionic–electronic conductors have shown great potential as implantable electrodes for neural recording/stimulation and as active channels for signal switching/amplifying transistors. Nonetheless, no studies exist on a general design rule for high-performance electrochemical diodes, which are essential for highly functional circuit architectures. In this work, generalizable electrochemical diodes with a very high current density over 30 kA cm−2 are designed by introducing an asymmetric active layer based on organic mixed ionic–electronic conductors. The underlying mechanism on polarity-sensitive balanced ionic doping/dedoping is elucidated by numerical device analysis and in operando spectroelectrochemical potential mapping, while the general material requirements for electrochemical diode operation are deduced using various types of conjugated polymers. In parallel, analog signal rectification and digital logic processing circuits are successfully demonstrated to show the broad impact of circuits incorporating organic electrochemical diodes. It is expected that organic electrochemical diodes will play vital roles in realizing multifunctional soft bioelectronic circuitry in combination with organic electrochemical transistors.
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/32480
DOI
https://doi.org/10.1002/adma.202107355
Fulltext

Type
Article
Funding
Y.K., G.K., and B.D. contributed equally to this work. The authors thank the Engineering and Physical Sciences Research Council (EPSRC) (EP/T028513/1), the Royal Society, and the Wolfson Foundation (Royal Society Wolfson Fellowship) for funding. This work was also supported by a National Research Foundation (NRF) grant funded by the Korean government (MSIT) (NRF\u20102021R1A2C1013015, NRF\u20102018M3A7B4070988, NRF\u20102020M3D1A1030660, NRF\u20102020M1A2A2080748, and NRF\u20102021R1A4A1022920), the Information Technology Research Center (ITRC) support program (IITP\u20102021\u20102020\u20100\u201001461) supervised by the Institute for Information & Communications Technology Planning & Evaluation (IITP), the Global Research Laboratory program (NRF\u20102017K1A1A2013153), and GIST Research Institute (GRI) and GIST Research Project grant by GIST in 2021.
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Park, Sungjun 박성준
Department of Electrical and Computer Engineering
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