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Fully Transparent, Ultrathin Flexible Organic Electrochemical Transistors with Additive Integration for Bioelectronic Applications

  • Ashuya Takemoto
  • , Teppei Araki (Corresponding author)
  • , Kazuya Nishimura
  • , Mihoko Akiyama
  • , Takafumi Uemura
  • , Kazuki Kiriyama
  • , Johan M. Koot
  • , Yuko Kasai
  • , Naoko Kurihira
  • , Shuto Osaki
  • , Shin ichi Wakida
  • , Jaap M.J. den Toonder
  • , Tsuyoshi Sekitani (Corresponding author)

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

Optical transparency is highly desirable in bioelectronic sensors because it enables multimodal optical assessment during electronic sensing. Ultrathin (<5 µm) organic electrochemical transistors (OECTs) can be potentially used as a highly efficient bioelectronic transducer because they demonstrate high transconductance during low-voltage operation and close conformability to biological tissues. However, the fabrication of fully transparent ultrathin OECTs remains a challenge owing to the harsh etching processes of nanomaterials. In this study, fully transparent, ultrathin, and flexible OECTs are developed using additive integration processes of selective-wetting deposition and thermally bonded lamination. These processes are compatible with Ag nanowire electrodes and conducting polymer channels and realize unprecedented flexible OECTs with high visible transmittance (>90%) and high transconductance (≈1 mS) in low-voltage operations (<0.6 V). Further, electroencephalogram acquisition and nitrate ion sensing are demonstrated in addition to the compatibility of simultaneous assessments of optical blood flowmetry when the transparent OECTs are worn, owing to the transparency. These feasibility demonstrations show promise in contributing to human stress monitoring in bioelectronics.

Original languageEnglish
Article number2204746
Number of pages11
JournalAdvanced Science
Volume10
Issue number2
Early online date14 Nov 2022
DOIs
Publication statusPublished - 13 Jan 2023

Funding

This work was supported by COI Program of the Japan Science and Technology Agency (JST), JST FOREST Program (Grant Numbers JPMJFR2035 and JPMJFR2022), JST Moonshot R&D Program (Grant Number JPMJMS2012), JST A‐STEP (Grant Number JPMJTM20QC), Japan Society for the Promotion of Science (JSPS) KAKENHI, Tateisi Science and Technology Foundation, and the New Energy and Industrial Technology Development Organization. The authors thank Y. Noda and T. Nezu from the Osaka University and T. Ramirez from the Eindhoven University of Technology for useful discussions, equipment, and assistance during data acquisition. The authors thank Showa Denko K. K. and Daikin Industries, LTD., for their support and provision of materials.

FundersFunder number
Japan Society for the Promotion of Science
Japan Science and Technology AgencyJPMJFR2035, JPMJFR2022
Eindhoven University of Technology
Osaka University

    Keywords

    • bioelectronic sensors
    • flexible electronics
    • transparent devices
    • Electrodes
    • Humans
    • Biosensing Techniques
    • Nanostructures
    • Polymers

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