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  4. Synthesis and characterization of wurtzite Cu 2ZnSnS 4 nanocrystals
 
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Synthesis and characterization of wurtzite Cu 2ZnSnS 4 nanocrystals

Journal
Japanese Journal of Applied Physics
Journal Volume
51
Journal Issue
10 PART 2
Date Issued
2012
Author(s)
Jao, M.-H.
Liao, H.-C.
Wu, M.-C.
Su, W.-F.
WEI-FANG SU  
DOI
10.1143/JJAP.51.10NC30
URI
http://www.scopus.com/inward/record.url?eid=2-s2.0-84869134614&partnerID=MN8TOARS
http://scholars.lib.ntu.edu.tw/handle/123456789/375178
Abstract
Copper-zinc-tin-chalcogenide (CZTSSe) with earth abundant elements has attracted increasing attention due to large absorption coefficient and band gap of ∼1:5 eV which is near the optimum band gap of single-junction photovoltaic devices. In this study, we used commercially available precursors to produce wurtzite Cu 2ZnSnS 4 nanocrystals by simple solvothermal synthesis. Different from the typical kesterite or stannite phases of CZTS, the nanocrystals synthesized in this study are in wurtzite phase with hexagonal crystal cell. The n-dodecanethiol was used to control the reactivity of metal ions, leading to the controlled size of CZTS nanoparticle by simply varying the reaction time. Furthermore, the as synthesized CZTS nanocrystals have novel wurtzite crystal structure. As a result, a red shift of absorption band edge between the CZTS nanoparticles with different size was obtained. Our study provides an extending method of CZTS nanocrystal ink preparation awaiting for further photovoltaic device application. © 2012 The Japan Society of Applied Physics.
SDGs

[SDGs]SDG7

Other Subjects
Controlled size; Different sizes; Hexagonal crystals; Kesterites; Large absorption coefficient; n-Dodecanethiol; Photovoltaic devices; Red shift; Solvothermal synthesis; Wurtzite crystal structure; Wurtzite phase; Wurtzites; Energy gap; Metal ions; Nanoparticles; Tin; Zinc sulfide; Nanocrystals
Type
journal article

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