Efficient molecular doping of polymeric semiconductors driven by anion exchange.

Yamashita, Yu; Tsurumi, Junto; Ohno, Masahiro; Fujimoto, Ryo; Kumagai, Shohei; Kurosawa, Tadanori; Okamoto, Toshihiro; Takeya, Jun et al. · Nature · 2019

basic_science · Level V

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Abstract

The efficiency with which polymeric semiconductors can be chemically doped-and the charge carrier densities that can thereby be achieved-is determined primarily by the electrochemical redox potential between the π-conjugated polymer and the dopant species<sup>1,2</sup>. Thus, matching the electron affinity of one with the ionization potential of the other can allow effective doping<sup>3,4</sup>. Here we describe a different process-which we term 'anion exchange'-that might offer improved doping levels. This process is mediated by an ionic liquid solvent and can be pictured as the effective instantaneous exchange of a conventional small p-type dopant anion with a second anion provided by an ionic liquid. The introduction of optimized ionic salt (the ionic liquid solvent) into a conventional binary donor-acceptor system can overcome the redox potential limitations described by Marcus theory<sup>5</sup>, and allows an anion-exchange efficiency of nearly 100 per cent. As a result, doping levels of up to almost one charge per monomer unit can be achieved. This demonstration of increased doping levels, increased stability and excellent transport properties shows that anion-exchange doping, which can use an almost infinite selection of ionic salts, could be a powerful tool for the realization of advanced molecular electronics.