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Diameter-Dependent Optical Absorption and Excitation Energy Transfer from Encapsulated Dye Molecules toward Single-Walled Carbon Nanotubes.
van Bezouw, Stein; Arias, Dylan H; Ihly, Rachelle; Cambré, Sofie; Ferguson, Andrew J; Campo, Jochen; Johnson, Justin C; Defillet, Joeri; Wenseleers, Wim; Blackburn, Jeffrey L.
Afiliação
  • van Bezouw S; Physics Department , University of Antwerp , Universiteitsplein 1 , B-2610 Antwerp , Belgium.
  • Arias DH; Chemistry & Nanoscience Center , National Renewable Energy Laboratory , Golden , Colorado 80401 , United States.
  • Ihly R; Chemistry & Nanoscience Center , National Renewable Energy Laboratory , Golden , Colorado 80401 , United States.
  • Cambré S; Physics Department , University of Antwerp , Universiteitsplein 1 , B-2610 Antwerp , Belgium.
  • Ferguson AJ; Chemistry & Nanoscience Center , National Renewable Energy Laboratory , Golden , Colorado 80401 , United States.
  • Campo J; Physics Department , University of Antwerp , Universiteitsplein 1 , B-2610 Antwerp , Belgium.
  • Johnson JC; Chemistry & Nanoscience Center , National Renewable Energy Laboratory , Golden , Colorado 80401 , United States.
  • Defillet J; Physics Department , University of Antwerp , Universiteitsplein 1 , B-2610 Antwerp , Belgium.
  • Wenseleers W; Physics Department , University of Antwerp , Universiteitsplein 1 , B-2610 Antwerp , Belgium.
  • Blackburn JL; Chemistry & Nanoscience Center , National Renewable Energy Laboratory , Golden , Colorado 80401 , United States.
ACS Nano ; 12(7): 6881-6894, 2018 Jul 24.
Article em En | MEDLINE | ID: mdl-29965726
ABSTRACT
The hollow cores and well-defined diameters of single-walled carbon nanotubes (SWCNTs) allow for creation of one-dimensional hybrid structures by encapsulation of various molecules. Absorption and near-infrared photoluminescence-excitation (PLE) spectroscopy reveal that the absorption spectrum of encapsulated 1,3-bis[4-(dimethylamino)phenyl]-squaraine dye molecules inside SWCNTs is modulated by the SWCNT diameter, as observed through excitation energy transfer (EET) from the encapsulated molecules to the SWCNTs, implying a strongly diameter-dependent stacking of the molecules inside the SWCNTs. Transient absorption spectroscopy, simultaneously probing the encapsulated dyes and the host SWCNTs, demonstrates this EET, which can be used as a route to diameter-dependent photosensitization, to be fast (sub-picosecond). A wide series of SWCNT samples is systematically characterized by absorption, PLE, and resonant Raman scattering (RRS), also identifying the critical diameter for squaraine filling. In addition, we find that SWCNT filling does not limit the selectivity of subsequent separation protocols (including polyfluorene polymers for isolating only semiconducting SWCNTs and aqueous two-phase separation for enrichment of specific SWCNT chiralities). The design of these functional hybrid systems, with tunable dye absorption, fast and efficient EET, and the ability to remove all metallic SWCNTs by subsequent separation, demonstrates potential for implementation in photoconversion devices.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2018 Tipo de documento: Article