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Thiophene-Based Trimers for In Vivo Electronic Functionalization of Tissues

Mantione, Daniele (author)
Univ Bordeaux, France
Istif, Emin (author)
Univ Bordeaux, France; Koc Univ, Turkey
Dufil, Gwennael (author)
Linköpings universitet,Laboratoriet för organisk elektronik,Tekniska fakulteten
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Vallan, Lorenzo (author)
Univ Bordeaux, France
Parker, Daniela (author)
Linköpings universitet,Laboratoriet för organisk elektronik,Tekniska fakulteten
Brochon, Cyril (author)
Univ Bordeaux, France
Cloutet, Eric (author)
Univ Bordeaux, France
Hadziioannou, Georges (author)
Univ Bordeaux, France
Berggren, Magnus (author)
Linköpings universitet,Laboratoriet för organisk elektronik,Tekniska fakulteten
Stavrinidou, Eleni (author)
Linköpings universitet,Laboratoriet för organisk elektronik,Tekniska fakulteten
Pavlopoulou, Eleni (author)
Univ Bordeaux, France
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 (creator_code:org_t)
2020-12-01
2020
English.
In: ACS APPLIED ELECTRONIC MATERIALS. - : AMER CHEMICAL SOC. - 2637-6113. ; 2:12, s. 4065-4071
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Electronic materials that can self-organize in vivo and form functional components along the tissue of interest can result in a seamless integration of the bioelectronic interface. Previously, we presented in vivo polymerization of the conjugated oligomer ETE-S in plants, forming conductors along the plant structure. The EDOT-thiophene-EDOT trimer with a sulfonate side group polymerized due to the native enzymatic activity of the plant and integrated within the plant cell wall. Here, we present the synthesis of three different conjugated trimers based on thiophene and EDOT or purely EDOT trimers that are able to polymerize enzymatically in physiological pH in vitro as well as in vivo along the roots of living plants. We show that by modulating the backbone and the side chain, we can tune the electronic properties of the resulting polymers as well as their localization and penetration within the root. Our work paves the way for the rational design of electronic materials that can self-organize in vivo for spatially controlled electronic functionalization of living tissue.

Subject headings

LANTBRUKSVETENSKAPER  -- Bioteknologi med applikationer på växter och djur -- Växtbioteknologi (hsv//swe)
AGRICULTURAL SCIENCES  -- Agricultural Biotechnology -- Plant Biotechnology (hsv//eng)

Keyword

EDOT; conducting polymers; enzymatic polymerization; plant-mediated polymerization; bioelectronics; tissue engineering

Publication and Content Type

ref (subject category)
art (subject category)

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