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Hole Extraction by Design in Photocatalytic Architectures Interfacing CdSe Quantum Dots with Topochemically Stabilized Tin Vanadium Oxide.
Andrews, Justin L; Cho, Junsang; Wangoh, Linda; Suwandaratne, Nuwanthi; Sheng, Aaron; Chauhan, Saurabh; Nieto, Kelly; Mohr, Alec; Kadassery, Karthika J; Popeil, Melissa R; Thakur, Pardeep K; Sfeir, Matthew; Lacy, David C; Lee, Tien-Lin; Zhang, Peihong; Watson, David F; Piper, Louis F J; Banerjee, Sarbajit.
Afiliación
  • Andrews JL; Department of Chemistry , Texas A&M University , College Station , Texas 77843-3255 , United States.
  • Cho J; Department of Materials Science and Engineering , Texas A&M University , College Station , Texas 77843-3255 , United States.
  • Wangoh L; Department of Chemistry , Texas A&M University , College Station , Texas 77843-3255 , United States.
  • Suwandaratne N; Department of Materials Science and Engineering , Texas A&M University , College Station , Texas 77843-3255 , United States.
  • Sheng A; Department of Physics, Applied Physics and Astronomy , Binghamton University , Binghamton , New York 13902 , United States.
  • Chauhan S; Department of Chemistry , University at Buffalo, The State University of New York , Buffalo , New York 14260-3000 , United States.
  • Nieto K; Department of Chemistry , University at Buffalo, The State University of New York , Buffalo , New York 14260-3000 , United States.
  • Mohr A; Department of Chemistry , University at Buffalo, The State University of New York , Buffalo , New York 14260-3000 , United States.
  • Kadassery KJ; Department of Chemistry , Texas A&M University , College Station , Texas 77843-3255 , United States.
  • Popeil MR; Department of Chemistry , Texas A&M University , College Station , Texas 77843-3255 , United States.
  • Thakur PK; Department of Chemistry , Texas A&M University , College Station , Texas 77843-3255 , United States.
  • Sfeir M; Department of Physics, Applied Physics and Astronomy , Binghamton University , Binghamton , New York 13902 , United States.
  • Lacy DC; Diamond Light Source Ltd ., Diamond House, Harwell Science and Innovation Campus , Didcot OX11 0DE , U.K.
  • Lee TL; Center for Functional Nanomaterials , Brookhaven National Laboratory , Upton , New York 11973 , United States.
  • Zhang P; Department of Chemistry , University at Buffalo, The State University of New York , Buffalo , New York 14260-3000 , United States.
  • Watson DF; Diamond Light Source Ltd ., Diamond House, Harwell Science and Innovation Campus , Didcot OX11 0DE , U.K.
  • Piper LFJ; Department of Physics , University at Buffalo, The State University of New York , Buffalo , New York 14260-3000 , United States.
  • Banerjee S; Department of Chemistry , University at Buffalo, The State University of New York , Buffalo , New York 14260-3000 , United States.
J Am Chem Soc ; 140(49): 17163-17174, 2018 Dec 12.
Article en En | MEDLINE | ID: mdl-30380858
ABSTRACT
Tackling the complex challenge of harvesting solar energy to generate energy-dense fuels such as hydrogen requires the design of photocatalytic nanoarchitectures interfacing components that synergistically mediate a closely interlinked sequence of light-harvesting, charge separation, charge/mass transport, and catalytic processes. The design of such architectures requires careful consideration of both thermodynamic offsets and interfacial charge-transfer kinetics to ensure long-lived charge carriers that can be delivered at low overpotentials to the appropriate catalytic sites while mitigating parasitic reactions such as photocorrosion. Here we detail the theory-guided design and synthesis of nanowire/quantum dot heterostructures with interfacial electronic structure specifically tailored to promote light-induced charge separation and photocatalytic proton reduction. Topochemical synthesis yields a metastable ß-Sn0.23V2O5 compound exhibiting Sn 5s-derived midgap states ideally positioned to extract photogenerated holes from interfaced CdSe quantum dots. The existence of these midgap states near the upper edge of the valence band (VB) has been confirmed, and ß-Sn0.23V2O5/CdSe heterostructures have been shown to exhibit a 0 eV midgap state-VB offset, which underpins ultrafast subpicosecond hole transfer. The ß-Sn0.23V2O5/CdSe heterostructures are further shown to be viable photocatalytic architectures capable of efficacious hydrogen evolution. The results of this study underscore the criticality of precisely tailoring the electronic structure of semiconductor components to effect rapid charge separation necessary for photocatalysis.

Texto completo: 1 Banco de datos: MEDLINE Idioma: En Año: 2018 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Idioma: En Año: 2018 Tipo del documento: Article