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Department of Energy Science and Engineering
MNEDL(Multifunctional Nanomaterials & Energy Devices Lab)
1. Journal Articles
Solution synthesis of single-crystalline Fe2GeS4 nanosheets
Lim, Da-Hye
;
Ramasamy, Parthiban
;
Lee, Jong-Soo
Department of Energy Science and Engineering
MNEDL(Multifunctional Nanomaterials & Energy Devices Lab)
1. Journal Articles
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Title
Solution synthesis of single-crystalline Fe2GeS4 nanosheets
Issued Date
2016-11-15
Citation
Lim, Da-Hye. (2016-11-15). Solution synthesis of single-crystalline Fe2GeS4 nanosheets. Materials Letters, 183, 65–68. doi: 10.1016/j.matlet.2016.07.072
Type
Article
Author Keywords
Semiconductor
;
One-pot synthesis
;
Solar energy materials
;
Fe2GeS4
;
Nanosheets
;
Bandgap
Keywords
Bandgap
;
Colloidal Synthesis
;
Crystalline Materials
;
Energy Gap
;
Fe2GeS4
;
NANOCRYSTALS
;
NANOSHEETS
;
ONE-POT SYNTHESIS
;
Photovoltaic Applications
;
PHOTOVOLTAICS
;
PYRITE FES2
;
Reaction Conditions
;
SemICONDUCTOR
;
Semiconductor Materials
;
Silicate Minerals
;
Single-Crystalline
;
Solar Energy
;
Solar Energy Materials
;
Thermodynamically Stable
;
Thin Film Photovoltaics
ISSN
0167-577X
Abstract
Pyrite (FeS2) has been extensively studied as low cost light absorber in thin film photovoltaics. However, the instability of FeS2 phase limits its performance in photovoltaics. Recently, olivine Fe2GeS4 has been proposed as thermodynamically stable alternative for the unstable FeS2 phase. Despite its attractive properties, studies on this material is quite limited. This is due to the difficulties associated with the synthesis. Herein, we report a simple one-pot colloidal synthesis of Fe2GeS4 nanosheets using 1-dodecanethiol as air-stable sulfur source. We have studied the favorable reaction conditions to form phase pure Fe2GeS4 nanosheets. The nanosheets are single-crystalline in nature and have an average size of 800nm and thickness around 64nm. The optical band gap of Fe2GeS4 is calculated to be 1.38eV, which is optimal for photovoltaic applications. © 2016
URI
http://hdl.handle.net/20.500.11750/2127
DOI
10.1016/j.matlet.2016.07.072
Publisher
Elsevier B.V.
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