4.7 Article

Enhanced H2 evolution and the interfacial electron transfer mechanism of titanate nanotube sensitized with CdS quantum dots and graphene quantum dots

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 45, Issue 11, Pages 6476-6486

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2019.12.196

Keywords

Titanate nanotubes; Graphene quantum dots (GQDs); Cadmium Sulfide (CdS); Hydrogen evolution; Charges transfer mechanism

Funding

  1. Natural Science Foundation of Guangxi [2018GXNSFBA138007, 2018GXNSFBA281073, 2018GXNSFAA294021]
  2. National Natural Science Foundation of China [11665007, 11664003]
  3. State Key Laboratory for Chemistry and Molecular Engineering of Medicinal Resources (Guangxi Normal University) [CMEMR2018-B11]
  4. PhD Start-up Fund of Guangxi Normal University [201713Q023, 2017BQ006]
  5. Innovation Project of Guangxi Graduate Education [XYCSZ2019058]

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Synergistic the modulation of photon absorption capability and interfacial charge transfer of the photocatalyst are highly required for developing high-performance heterojunction photocatalysts. The ternary CdS-graphene quantum dots-titanate nanotubes (CdS-GQDs-TNTs) nanocomposite have been prepared by an in situ growth method. The physicochemical characterization reveals that the GQDs are firmly decorated on both inner and outer surface of TNT through the formation of Ti-O-C chemical bonding, and CdS-QDs are loaded on the outer surface of TNTs through strong interfacial interaction. The intimate integrated CdS-GQDs-TNTs nanocomposite exhibits much superior photocatalytic performance toward H-2 production compared with binary GQDs-TNTs and pure TNTs photo catalyst, which can be attributed to the combined interaction of the stronger visible light harvesting, the longer lifetime of photogenerated electron hole pairs, faster interfacial charge transfer rate, fast and long-distance electron transport pass. The interfacial charge transfer mechanism of CdS-GQDs-TNTs ternary composite are proposed based on photo electrochemical measurements. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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