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Electronic Processes within Quantum Dot-Molecule Complexes.
Harris, Rachel D; Bettis Homan, Stephanie; Kodaimati, Mohamad; He, Chen; Nepomnyashchii, Alexander B; Swenson, Nathaniel K; Lian, Shichen; Calzada, Raul; Weiss, Emily A.
Afiliación
  • Harris RD; Department of Chemistry, Northwestern University , Evanston, Illinois 60208, United States.
  • Bettis Homan S; Department of Chemistry, Northwestern University , Evanston, Illinois 60208, United States.
  • Kodaimati M; Department of Chemistry, Northwestern University , Evanston, Illinois 60208, United States.
  • He C; Department of Chemistry, Northwestern University , Evanston, Illinois 60208, United States.
  • Nepomnyashchii AB; Department of Chemistry, Northwestern University , Evanston, Illinois 60208, United States.
  • Swenson NK; Department of Chemistry, Northwestern University , Evanston, Illinois 60208, United States.
  • Lian S; Department of Chemistry, Northwestern University , Evanston, Illinois 60208, United States.
  • Calzada R; Department of Chemistry, Northwestern University , Evanston, Illinois 60208, United States.
  • Weiss EA; Department of Chemistry, Northwestern University , Evanston, Illinois 60208, United States.
Chem Rev ; 116(21): 12865-12919, 2016 Nov 09.
Article en En | MEDLINE | ID: mdl-27499491
The subject of this review is the colloidal quantum dot (QD) and specifically the interaction of the QD with proximate molecules. It covers various functions of these molecules, including (i) ligands for the QDs, coupled electronically or vibrationally to localized surface states or to the delocalized states of the QD core, (ii) energy or electron donors or acceptors for the QDs, and (iii) structural components of QD assemblies that dictate QD-QD or QD-molecule interactions. Research on interactions of ligands with colloidal QDs has revealed that ligands determine not only the excited state dynamics of the QD but also, in some cases, its ground state electronic structure. Specifically, the article discusses (i) measurement of the electronic structure of colloidal QDs and the influence of their surface chemistry, in particular, dipolar ligands and exciton-delocalizing ligands, on their electronic energies; (ii) the role of molecules in interfacial electron and energy transfer processes involving QDs, including electron-to-vibrational energy transfer and the use of the ligand shell of a QD as a semipermeable membrane that gates its redox activity; and (iii) a particular application of colloidal QDs, photoredox catalysis, which exploits the combination of the electronic structure of the QD core and the chemistry at its surface to use the energy of the QD excited state to drive chemical reactions.
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Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Chem Rev Año: 2016 Tipo del documento: Article País de afiliación: Estados Unidos
Buscar en Google
Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Chem Rev Año: 2016 Tipo del documento: Article País de afiliación: Estados Unidos