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Tunable UV-visible absorption of SnS2 layered quantum dots produced by liquid phase exfoliation

Authors
Fu, XiaoIlanchezhiyan, P.Kumar, G. MohanCho, Hak DongZhang, LeiChan, A. SattarLee, Dong J.Panin, Gennady N.Kang, Tae Won
Issue Date
7-Feb-2017
Publisher
ROYAL SOC CHEMISTRY
Citation
NANOSCALE, v.9, no.5, pp 1820 - 1826
Pages
7
Indexed
SCI
SCIE
SCOPUS
Journal Title
NANOSCALE
Volume
9
Number
5
Start Page
1820
End Page
1826
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/23796
DOI
10.1039/c6nr09022b
ISSN
2040-3364
2040-3372
Abstract
4H-SnS2 layered crystals synthesized by a hydrothermal method were used to obtain via liquid phase exfoliation quantum dots (QDs), consisting of a single layer (SLQDs) or multiple layers (MLQDs). Systematic downshift of the peaks in the Raman spectra of crystals with a decrease in size was observed. The bandgap of layered QDs, estimated by UV-visible absorption spectroscopy and the tunneling current measurements using graphene probes, increases from 2.25 eV to 3.50 eV with decreasing size. 2-4 nm SLQDs, which are transparent in the visible region, show selective absorption and photosensitivity at wavelengths in the ultraviolet region of the spectrum while larger MLQDs (5-90 nm) exhibit a broad band absorption in the visible spectral region and the photoresponse under white light. The results show that the layered quantum dots obtained by liquid phase exfoliation exhibit wellcontrolled and regulated bandgap absorption in a wide tunable wavelength range. These novel layered quantum dots prepared using an inexpensive method of exfoliation and deposition from solution onto various substrates at room temperature can be used to create highly efficient visible-blind ultraviolet photodetectors and multiple bandgap solar cells.
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