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Computationally aided design of a high-performance organic semiconductor: the development of a universal crystal engineering core.

Anthony J PettyQianxiang AiJeni C SorliHamna F HaneefGeoffrey E PurdumAlex BoehmDevin B GrangerKaichen GuCarla Patricia Lacerda RubingerSean R ParkinKenneth R GrahamOana D JurchescuYueh-Lin LooChad M RiskoJohn E Anthony
Published in: Chemical science (2019)
Herein, we describe the design and synthesis of a suite of molecules based on a benzodithiophene "universal crystal engineering core". After computationally screening derivatives, a trialkylsilylethyne-based crystal engineering strategy was employed to tailor the crystal packing for use as the active material in an organic field-effect transistor. Electronic structure calculations were undertaken to reveal derivatives that exhibit exceptional potential for high-efficiency hole transport. The promising theoretical properties are reflected in the preliminary device results, with the computationally optimized material showing simple solution processing, enhanced stability, and a maximum hole mobility of 1.6 cm2 V-1 s-1.
Keyphrases
  • high efficiency
  • solid state
  • genome wide
  • molecular dynamics simulations
  • single cell
  • risk assessment
  • solar cells
  • human health