English

Bio-inspired adaptive sensing through electropolymerization of organic electrochemical transistors

Signal Processing 2021-08-31 v1 Materials Science

Abstract

Organic Electrochemical Transistors are considered today as a key technology to interact with biological medium through their intrinsic ionic-electronic coupling. In this paper, we show how this coupling can be finely tuned (in operando) post-microfabrication via electropolymerization technique. This strategy exploits the concept of adaptive sensing where both transconductance and impedance are tunable and can be modified on-demand to match different sensing requirements. Material investigation through Raman spectroscopy, atomic force microscopy and scanning electron microscopy reveals that electropolymerization can lead to a fine control of PEDOT microdomains organization, which directly affect the iono-electronic properties of OECTs. We further highlight how volumetric capacitance and effective mobility of PEDOT:PSS influence distinctively the transconductance and impedance of OECTs. This approach shows to improve the transconductance by 150% while reducing their variability by 60% in comparison with standard spin-coated OECTs. Finally, we show how to the technique can influence voltage spike rate hardware classificationwith direct interest in bio-signals sorting applications.

Keywords

Cite

@article{arxiv.2108.13218,
  title  = {Bio-inspired adaptive sensing through electropolymerization of organic electrochemical transistors},
  author = {Mahdi Ghazal and Michel Daher Mansour and Corentin Scholaert and Thomas Dargent and Yannick Coffinier and Sebastien Pecqueur and Fabien Alibart},
  journal= {arXiv preprint arXiv:2108.13218},
  year   = {2021}
}