| Literature DB >> 28656618 |
Jacek Gliniak1, Jia-Hoa Lin1, Yi-Ting Chen1, Chuen-Ru Li1, Efat Jokar1, Chin-Hao Chang1, Chun-Sheng Peng1, Jui-Nien Lin1, Wan-Hsiang Lien1, Hui-Min Tsai1, Tung-Kung Wu1.
Abstract
Sulfur-doped graphene oxide quantum dots (S-GOQDs) were synthesized and investigated for efficient photocatalytic hydrogen generation application. The UV/Vis, FTIR, and photoluminescence spectra of the synthesized S-GOQDs exhibit three absorption bands at 333, 395, and 524 nm, characteristic of C=S and C-S stretching vibration signals at 1075 and 690 cm-1 , and two excitation-wavelength-independent emission signals with maxima at 451 and 520 nm, respectively, confirming the successful doping of S atom into the GOQDs. Electronic structural analysis suggested that the S-GOQDs exhibit conduction band minimum (CBM) and valence band maximum (VBM) levels suitable for water splitting. Under direct sunlight irradiation, an initial rate of 18 166 μmol h-1 g-1 in pure water and 30 519 μmol h-1 g-1 in 80 % ethanol aqueous solution were obtained. Therefore, metal-free and inexpensive S-GOQDs hold great potential in the development of sustainable and environmentally friendly photocatalysts for efficient hydrogen generation from water splitting.Entities:
Keywords: graphene oxide; hydrogen generation; photocatalysis; quantum dots; water splitting
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Year: 2017 PMID: 28656618 DOI: 10.1002/cssc.201700910
Source DB: PubMed Journal: ChemSusChem ISSN: 1864-5631 Impact factor: 8.928