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High-performance, polymer-based direct cellular interfaces for electrical stimulation and recording

Kim, Seong-Min (författare)
Gwangju Inst Sci and Technol, South Korea
Kim, Nara (författare)
Gwangju Inst Sci and Technol, South Korea; Gwangju Inst Sci and Technol, South Korea; Gwangju Inst Sci and Technol, South Korea
Kim, Youngseok (författare)
Gwangju Inst Sci and Technol, South Korea; Univ Chicago, IL 60637 USA
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Baek, Min-Seo (författare)
Gwangju Inst Sci and Technol, South Korea
Yoo, Minsu (författare)
Univ Chicago, IL 60637 USA
Kim, Dongyoon (författare)
Gwangju Inst Sci and Technol, South Korea
Lee, Won-June (författare)
Gwangju Inst Sci and Technol, South Korea
Kang, Dong-Hee (författare)
Gwangju Inst Sci and Technol, South Korea
Kim, Sohee (författare)
Daegu Gyeongbuk Inst Sci and Technol, South Korea
Lee, Kwanghee (författare)
Gwangju Inst Sci and Technol, South Korea; Gwangju Inst Sci and Technol, South Korea; Gwangju Inst Sci and Technol, South Korea
Yoon, Myung-Han (författare)
Gwangju Inst Sci and Technol, South Korea
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 (creator_code:org_t)
2018-04-16
2018
Engelska.
Ingår i: NPG ASIA MATERIALS. - : NATURE PUBLISHING GROUP. - 1884-4049 .- 1884-4057. ; 10, s. 255-265
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
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  • Due to the trade-off between their electrical/electrochemical performance and underwater stability, realizing polymer-based, high-performance direct cellular interfaces for electrical stimulation and recording has been very challenging. Herein, we developed transparent and conductive direct cellular interfaces based on a water-stable, high-performance poly(3,4-ethylenedioxythiophene):polystyrene sulfonate (PEDOT:PSS) film via solvent-assisted crystallization. The crystallized PEDOT:PSS on a polyethylene terephthalate (PET) substrate exhibited excellent electrical/electrochemical/optical characteristics, long-term underwater stability without film dissolution/delamination, and good viability for primarily cultured cardiomyocytes and neurons over several weeks. Furthermore, the highly crystallized, nanofibrillar PEDOT:PSS networks enabled dramatically enlarged surface areas and electrochemical activities, which were successfully employed to modulate cardiomyocyte beating via direct electrical stimulation. Finally, the high-performance PEDOT:PSS layer was seamlessly incorporated into transparent microelectrode arrays for efficient, real-time recording of cardiomyocyte action potentials with a high signal fidelity. All these results demonstrate the strong potential of crystallized PEDOT:PSS as a crucial component for a variety of versatile bioelectronic interfaces.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Elektroteknik och elektronik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Electrical Engineering, Electronic Engineering, Information Engineering (hsv//eng)

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