4.8 Article

Rational Materials Design for In Operando Electropolymerization of Evolvable Organic Electrochemical Transistors

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 32, Issue 32, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202202292

Keywords

2; 3-dihydrothieno[3; 4]dioxin-5-yl)thiophene; 4-b][1; 5-bis(2; electropolymerization; ETE-S; evolvable transistors; organic electrochemical transistors; silanes; synaptic transistors

Funding

  1. Swedish Foundation for Strategic Research [RMX18-0083]
  2. Swedish Research Council [2018-06197]
  3. European Research Council [834677]
  4. Swedish Government Strategic Research Area in Materials Science on Functional Materials at Linkoping University [SFO-Mat-LiU 2009-00971]
  5. Knut and Alice Wallenberg Foundation
  6. Onnesjo Foundation
  7. Swedish Research Council [2018-06197] Funding Source: Swedish Research Council
  8. Swedish Foundation for Strategic Research (SSF) [RMX18-0083] Funding Source: Swedish Foundation for Strategic Research (SSF)
  9. European Research Council (ERC) [834677] Funding Source: European Research Council (ERC)

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Organic electrochemical transistors formed by in operando electropolymerization are recognized as a simple and effective implementation of synapses in neuromorphic hardware. This study investigates the interface between the substrate and monomer precursors, showing that monomer adsorption to the substrate increases the effective monomer concentration at the surface. The control of interactions between substrate and monomer precursor is crucial for the growth of polymer films, especially for fabricating synaptic systems on inexpensive, flexible substrates.
Organic electrochemical transistors formed by in operando electropolymerization of the semiconducting channel are increasingly becoming recognized as a simple and effective implementation of synapses in neuromorphic hardware. However, very few studies have reported the requirements that must be met to ensure that the polymer spreads along the substrate to form a functional conducting channel. The nature of the interface between the substrate and various monomer precursors of conducting polymers through molecular dynamics simulations is investigated, showing that monomer adsorption to the substrate produces an increase in the effective monomer concentration at the surface. By evaluating combinatorial couples of monomers baring various sidechains with differently functionalized substrates, it is shown that the interactions between the substrate and the monomer precursor control the lateral growth of a polymer film along an inert substrate. This effect has implications for fabricating synaptic systems on inexpensive, flexible substrates.

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