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Sökning: onr:"swepub:oai:DiVA.org:liu-182619" > Vertical Organic El...

Vertical Organic Electrochemical Transistors and Electronics for Low Amplitude Micro-Organ Signals

Abarkan, Myriam (författare)
Univ Bordeaux, France
Pirog, Antoine (författare)
Univ Bordeaux, France
Mafilaza, Donnie (författare)
Univ Bordeaux, France
visa fler...
Pathak, Gaurav (författare)
Linköpings universitet,Laboratoriet för organisk elektronik,Tekniska fakulteten,MOC, France
NKaoua, Gilles (författare)
Univ Bordeaux, France
Puginier, Emilie (författare)
Univ Bordeaux, France
OConnor, Rodney (författare)
MOC, France
Raoux, Matthieu (författare)
Univ Bordeaux, France
Donahue, Mary (författare)
Linköpings universitet,Laboratoriet för organisk elektronik,Tekniska fakulteten,MOC, France
Renaud, Sylvie (författare)
Univ Bordeaux, France
Lang, Jochen (författare)
Univ Bordeaux, France
visa färre...
 (creator_code:org_t)
2022-01-22
2022
Engelska.
Ingår i: Advanced Science. - : Wiley. - 2198-3844. ; 9:8
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • Electrical signals are fundamental to key biological events such as brain activity, heartbeat, or vital hormone secretion. Their capture and analysis provide insight into cell or organ physiology and a number of bioelectronic medical devices aim to improve signal acquisition. Organic electrochemical transistors (OECT) have proven their capacity to capture neuronal and cardiac signals with high fidelity and amplification. Vertical PEDOT:PSS-based OECTs (vOECTs) further enhance signal amplification and device density but have not been characterized in biological applications. An electronic board with individually tuneable transistor biases overcomes fabrication induced heterogeneity in device metrics and allows quantitative biological experiments. Careful exploration of vOECT electric parameters defines voltage biases compatible with reliable transistor function in biological experiments and provides useful maximal transconductance values without influencing cellular signal generation or propagation. This permits successful application in monitoring micro-organs of prime importance in diabetes, the endocrine pancreatic islets, which are known for their far smaller signal amplitudes as compared to neurons or heart cells. Moreover, vOECTs capture their single-cell action potentials and multicellular slow potentials reflecting micro-organ organizations as well as their modulation by the physiological stimulator glucose. This opens the possibility to use OECTs in new biomedical fields well beyond their classical applications.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Kemiteknik -- Annan kemiteknik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Chemical Engineering -- Other Chemical Engineering (hsv//eng)

Nyckelord

biosensor; cardiomyocytes; diabetes; electrophysiology; insulin; organic electrochemical transistors; pancreatic islets

Publikations- och innehållstyp

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