Evolution pathway of CIGSe nanocrystals for solar cell applications

CuInxGa1–xSe2 nanocrystals synthesized via the hot injection route have been used to make thin film solar cells with high power conversion efficiency. Thus, CuInxGa1–xSe2 nanocrystals have the potential to provide a low cost and high efficiency solution to harvest solar energy. Stoichiometry control...

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Main Authors: Boothroyd, Chris, Ahmadi, Mahshid, Pramana, Stevin Snellius, Xi, Lifei, Lam, Yeng Ming, Mhaisalkar, Subodh Gautam
Other Authors: School of Materials Science & Engineering
Format: Article
Language:English
Published: 2013
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Online Access:https://hdl.handle.net/10356/99181
http://hdl.handle.net/10220/17164
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-991812020-06-01T10:13:32Z Evolution pathway of CIGSe nanocrystals for solar cell applications Boothroyd, Chris Ahmadi, Mahshid Pramana, Stevin Snellius Xi, Lifei Lam, Yeng Ming Mhaisalkar, Subodh Gautam School of Materials Science & Engineering DRNTU::Engineering::Materials::Nanostructured materials CuInxGa1–xSe2 nanocrystals synthesized via the hot injection route have been used to make thin film solar cells with high power conversion efficiency. Thus, CuInxGa1–xSe2 nanocrystals have the potential to provide a low cost and high efficiency solution to harvest solar energy. Stoichiometry control of these nanocrystals offers the possibility of tuning the band gap of this material. It is important to understand how the composition of quaternary CuInxGa1–xSe2 nanocrystals evolves to control the stoichiometry of this compound. We report a systematic study of the growth and evolution pathways of quaternary CuIn0.5Ga0.5Se2 nanocrystals in a hot coordination solvent. The reaction starts by the formation of a mixture of binary and ternary nanocrystals, which transforms subsequently to CuIn0.5Ga0.5Se2 nanocrystals. These binary and ternary compounds dissolve in the course of the reaction, so as to provide the molecular precursor for monophasic CuIn0.5Ga0.5Se2 nanocrystals to form. Here, we study the growth sequence of these spherical, monophasic CuIn0.5Ga0.5Se2 nanocrystals as a function of time. Control experiments indicated that the phase changes of CuIn0.5Ga0.5Se2 nanocrystals are temperature- and time-dependent. The change in the stoichiometry of CuIn0.5Ga0.5Se2 during growth was estimated using Vegard’s law. 2013-10-31T08:10:06Z 2019-12-06T20:04:11Z 2013-10-31T08:10:06Z 2019-12-06T20:04:11Z 2012 2012 Journal Article Ahmadi, M., Pramana, S. S., Xi, L., Boothroyd, C., Lam, Y. M., & Mhaisalkar, S. (2012). Evolution pathway of CIGSe nanocrystals for solar cell applications. The Journal of Physical Chemistry C, 116(14), 8202-8209. https://hdl.handle.net/10356/99181 http://hdl.handle.net/10220/17164 10.1021/jp300187r en The journal of physical chemistry C
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Nanostructured materials
spellingShingle DRNTU::Engineering::Materials::Nanostructured materials
Boothroyd, Chris
Ahmadi, Mahshid
Pramana, Stevin Snellius
Xi, Lifei
Lam, Yeng Ming
Mhaisalkar, Subodh Gautam
Evolution pathway of CIGSe nanocrystals for solar cell applications
description CuInxGa1–xSe2 nanocrystals synthesized via the hot injection route have been used to make thin film solar cells with high power conversion efficiency. Thus, CuInxGa1–xSe2 nanocrystals have the potential to provide a low cost and high efficiency solution to harvest solar energy. Stoichiometry control of these nanocrystals offers the possibility of tuning the band gap of this material. It is important to understand how the composition of quaternary CuInxGa1–xSe2 nanocrystals evolves to control the stoichiometry of this compound. We report a systematic study of the growth and evolution pathways of quaternary CuIn0.5Ga0.5Se2 nanocrystals in a hot coordination solvent. The reaction starts by the formation of a mixture of binary and ternary nanocrystals, which transforms subsequently to CuIn0.5Ga0.5Se2 nanocrystals. These binary and ternary compounds dissolve in the course of the reaction, so as to provide the molecular precursor for monophasic CuIn0.5Ga0.5Se2 nanocrystals to form. Here, we study the growth sequence of these spherical, monophasic CuIn0.5Ga0.5Se2 nanocrystals as a function of time. Control experiments indicated that the phase changes of CuIn0.5Ga0.5Se2 nanocrystals are temperature- and time-dependent. The change in the stoichiometry of CuIn0.5Ga0.5Se2 during growth was estimated using Vegard’s law.
author2 School of Materials Science & Engineering
author_facet School of Materials Science & Engineering
Boothroyd, Chris
Ahmadi, Mahshid
Pramana, Stevin Snellius
Xi, Lifei
Lam, Yeng Ming
Mhaisalkar, Subodh Gautam
format Article
author Boothroyd, Chris
Ahmadi, Mahshid
Pramana, Stevin Snellius
Xi, Lifei
Lam, Yeng Ming
Mhaisalkar, Subodh Gautam
author_sort Boothroyd, Chris
title Evolution pathway of CIGSe nanocrystals for solar cell applications
title_short Evolution pathway of CIGSe nanocrystals for solar cell applications
title_full Evolution pathway of CIGSe nanocrystals for solar cell applications
title_fullStr Evolution pathway of CIGSe nanocrystals for solar cell applications
title_full_unstemmed Evolution pathway of CIGSe nanocrystals for solar cell applications
title_sort evolution pathway of cigse nanocrystals for solar cell applications
publishDate 2013
url https://hdl.handle.net/10356/99181
http://hdl.handle.net/10220/17164
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