We present a computational study of the molecular organization and charge mobility of Ph-BTBT-C10, a high performance organic semiconductor of considerable current interest. We have observed for the first time by atomistic molecular dynamics the formation of an ordered smectic phase on cooling down from the isotropic melt and upon heating the crystal, for this system, in good agreement with experiment. Although we could observe only a smectic A and not a smectic E phase, the temperature variation of the hole mobility estimated from hopping model calculations reproduces the main features of experiments. The crystal phase is characterized by high mobility bilayers defined by the aromatic π-conjugated cores, but it is effectively insulating in the orthogonal direction. The smectic phase is characterized by more disordered monolayers, which have a good in-plane mobility and a lower, but still appreciable, degree of charge transport across the layers. This feature may be advantageous for applications requiring materials with evenly balanced, three-dimensional conduction paths.

Baggioli A., Casalegno M., Raos G., Muccioli L., Orlandi S., Zannoni C. (2019). Atomistic Simulation of Phase Transitions and Charge Mobility for the Organic Semiconductor Ph-BTBT-C10. CHEMISTRY OF MATERIALS, 31(17), 7092-7103 [10.1021/acs.chemmater.9b02882].

Atomistic Simulation of Phase Transitions and Charge Mobility for the Organic Semiconductor Ph-BTBT-C10

Muccioli L.;Orlandi S.
;
Zannoni C.
2019

Abstract

We present a computational study of the molecular organization and charge mobility of Ph-BTBT-C10, a high performance organic semiconductor of considerable current interest. We have observed for the first time by atomistic molecular dynamics the formation of an ordered smectic phase on cooling down from the isotropic melt and upon heating the crystal, for this system, in good agreement with experiment. Although we could observe only a smectic A and not a smectic E phase, the temperature variation of the hole mobility estimated from hopping model calculations reproduces the main features of experiments. The crystal phase is characterized by high mobility bilayers defined by the aromatic π-conjugated cores, but it is effectively insulating in the orthogonal direction. The smectic phase is characterized by more disordered monolayers, which have a good in-plane mobility and a lower, but still appreciable, degree of charge transport across the layers. This feature may be advantageous for applications requiring materials with evenly balanced, three-dimensional conduction paths.
2019
Baggioli A., Casalegno M., Raos G., Muccioli L., Orlandi S., Zannoni C. (2019). Atomistic Simulation of Phase Transitions and Charge Mobility for the Organic Semiconductor Ph-BTBT-C10. CHEMISTRY OF MATERIALS, 31(17), 7092-7103 [10.1021/acs.chemmater.9b02882].
Baggioli A.; Casalegno M.; Raos G.; Muccioli L.; Orlandi S.; Zannoni C.
File in questo prodotto:
Eventuali allegati, non sono esposti

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/701193
 Attenzione

Attenzione! I dati visualizzati non sono stati sottoposti a validazione da parte dell'ateneo

Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 21
  • ???jsp.display-item.citation.isi??? 21
social impact