The effect of donor-acceptor (D-A) moieties on magnitudes such as reorganization energies and electronic couplings in cycloparaphenylene (CPP) carbon based nanohoops (i.e. conjugated organic molecules with cyclic topology) is highlighted via model computations and analysis of the available crystalline structure of N,N-dimethylaza[8]CPP. For the sake of comparison, intra-molecular and inter-molecular charge transport parameters are concomitantly modelled for the recently determined herringbone polymorph of [6]CPP, along with [8]CPP and [12]CPP. The peculiar contribution of low frequency vibrations to intramolecular reorganization energies is also disclosed by computing the Huang-Rhys factors for the investigated [n]CPPs and the N,N-dimethylaza derivative. In contrast with most planar organic semiconductors where the layer in which molecules are herringbone arranged identifies the high-mobility plane, nanohoops disclose inter-layer electronic couplings larger than the intra-layer counterparts. Charge transfer rate constants modelled with three different approaches (Marcus, Marcus-Levich-Jortner and spectral overlap) suggest that D-A nanohoops, owing to orbital localization, may be more efficient for charge transport than [n]CPPs for suitable solid phase arrangements.

Canola, S., Graham, C., Pérez-Jiménez, Á.J., Sancho-García, J., Negri, F. (2019). Charge transport parameters for carbon based nanohoops and donor-acceptor derivatives. PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 21(4), 2057-2068-2068 [10.1039/c8cp06727a].

Charge transport parameters for carbon based nanohoops and donor-acceptor derivatives

Canola, Sofia;Sancho-García, Juan-Carlos
;
Negri, Fabrizia
2019

Abstract

The effect of donor-acceptor (D-A) moieties on magnitudes such as reorganization energies and electronic couplings in cycloparaphenylene (CPP) carbon based nanohoops (i.e. conjugated organic molecules with cyclic topology) is highlighted via model computations and analysis of the available crystalline structure of N,N-dimethylaza[8]CPP. For the sake of comparison, intra-molecular and inter-molecular charge transport parameters are concomitantly modelled for the recently determined herringbone polymorph of [6]CPP, along with [8]CPP and [12]CPP. The peculiar contribution of low frequency vibrations to intramolecular reorganization energies is also disclosed by computing the Huang-Rhys factors for the investigated [n]CPPs and the N,N-dimethylaza derivative. In contrast with most planar organic semiconductors where the layer in which molecules are herringbone arranged identifies the high-mobility plane, nanohoops disclose inter-layer electronic couplings larger than the intra-layer counterparts. Charge transfer rate constants modelled with three different approaches (Marcus, Marcus-Levich-Jortner and spectral overlap) suggest that D-A nanohoops, owing to orbital localization, may be more efficient for charge transport than [n]CPPs for suitable solid phase arrangements.
2019
Canola, S., Graham, C., Pérez-Jiménez, Á.J., Sancho-García, J., Negri, F. (2019). Charge transport parameters for carbon based nanohoops and donor-acceptor derivatives. PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 21(4), 2057-2068-2068 [10.1039/c8cp06727a].
Canola, Sofia; Graham, Christina; Pérez-Jiménez, Ángel José; Sancho-García, Juan-Carlos; Negri, Fabrizia
File in questo prodotto:
File Dimensione Formato  
2019-pccp-21-2057-2068-SI.pdf

accesso aperto

Descrizione: supporting information
Tipo: File Supplementare
Licenza: Licenza per accesso libero gratuito
Dimensione 1.77 MB
Formato Adobe PDF
1.77 MB Adobe PDF Visualizza/Apri
draft-pccp_revised-per-IRIS.pdf

Open Access dal 18/12/2019

Descrizione: postprint
Tipo: Postprint
Licenza: Licenza per Accesso Aperto. Creative Commons Attribuzione - Non commerciale (CCBYNC)
Dimensione 1.2 MB
Formato Adobe PDF
1.2 MB Adobe PDF Visualizza/Apri

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/11585/687712
Citazioni
  • ???jsp.display-item.citation.pmc??? 1
  • Scopus 17
  • ???jsp.display-item.citation.isi??? 17
social impact