Charge and Thermoelectric Transport in Polymer-Sorted Semiconducting Single-Walled Carbon Nanotube Networks.

Boltzmann transport formalism Seebeck coefficient charge transport single-walled carbon nanotubes networks thermoelectric transport

Journal

ACS nano
ISSN: 1936-086X
Titre abrégé: ACS Nano
Pays: United States
ID NLM: 101313589

Informations de publication

Date de publication:
24 Nov 2020
Historique:
pubmed: 10 11 2020
medline: 10 11 2020
entrez: 9 11 2020
Statut: ppublish

Résumé

Understanding the charge transport mechanisms in chirality-selected single-walled carbon nanotube (SWCNT) networks and the influence of network parameters is essential for further advances of their optoelectronic and thermoelectric applications. Here, we report on charge density and temperature-dependent field-effect mobility and on-chip field-effect-modulated Seebeck coefficient measurements of polymer-sorted monochiral small-diameter (6,5) (0.76 nm) and mixed large-diameter SWCNT (1.17-1.55 nm) networks (plasma torch nanotubes, RN) with different network densities and length distributions. All untreated networks display balanced ambipolar transport and electron-hole symmetric Seebeck coefficients. We show that charge and thermoelectric transport in SWCNT networks can be modeled by the Boltzmann transport formalism, incorporating transport in heterogeneous media and fluctuation-induced tunneling. Considering the diameter-dependent one-dimensional density of states (DoS) of the SWCNTs composing the network, we can simulate the charge density and temperature-dependent Seebeck coefficients. Our simulations suggest that scattering in these networks cannot be described as simple one-dimensional acoustic and optical phonon scattering as for single SWCNTs. Instead the relaxation time is inversely proportional to energy (τ ∝ (

Identifiants

pubmed: 33166124
doi: 10.1021/acsnano.0c06181
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

15552-15565

Auteurs

Martin Statz (M)

Cavendish Laboratory, University of Cambridge, CB3 0HE Cambridge, U.K.

Severin Schneider (S)

Institute for Physical Chemistry, Universität Heidelberg, D-69120 Heidelberg, Germany.

Felix J Berger (FJ)

Institute for Physical Chemistry, Universität Heidelberg, D-69120 Heidelberg, Germany.

Lianglun Lai (L)

Cavendish Laboratory, University of Cambridge, CB3 0HE Cambridge, U.K.
Cambridge Graphene Centre, University of Cambridge, CB3 0FA Cambridge, U.K.

William A Wood (WA)

Cavendish Laboratory, University of Cambridge, CB3 0HE Cambridge, U.K.

Mojtaba Abdi-Jalebi (M)

Cavendish Laboratory, University of Cambridge, CB3 0HE Cambridge, U.K.
Institute for Materials Discovery, University College London, WC1E 7JE London, U.K.

Simone Leingang (S)

Institute for Inorganic Chemistry, Universität Heidelberg, D-69120 Heidelberg, Germany.

Hans-Jörg Himmel (HJ)

Institute for Inorganic Chemistry, Universität Heidelberg, D-69120 Heidelberg, Germany.

Jana Zaumseil (J)

Institute for Physical Chemistry, Universität Heidelberg, D-69120 Heidelberg, Germany.
Centre for Advanced Materials, Universität Heidelberg, D-69120 Heidelberg, Germany.

Henning Sirringhaus (H)

Cavendish Laboratory, University of Cambridge, CB3 0HE Cambridge, U.K.

Classifications MeSH