Effects of hydrazine on the solvothermal synthesis of Cu2ZnSnSe4 and Cu2CdSnSe4 nanocrystals for particle-based deposition of films

被引:8
作者
Chiang, Ming-Hung [1 ]
Fu, Yaw-Shyan [2 ]
Shih, Cheng-Hung [1 ]
Kuo, Chun-Cheng [1 ]
Guo, Tzung-Fang [3 ]
Lin, Wen-Tai [1 ]
机构
[1] Natl Cheng Kung Univ, Dept Mat Sci & Engn, Tainan 701, Taiwan
[2] Natl Univ Tainan, Dept Greenergy, Tainan 700, Taiwan
[3] Natl Cheng Kung Univ, Adv Optoelect Technol Ctr, Dept Photon, Tainan 701, Taiwan
关键词
Cu2ZnSnSe4; nanocrystals; Hydrazine; Solvothermal synthesis; Raman spectra; QUATERNARY CHALCOGENIDE NANOCRYSTALS; THERMOELECTRIC PROPERTIES; NANOWIRES; NANORODS; COMPLEX; CUINSE2; ROUTE;
D O I
10.1016/j.tsf.2013.03.096
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The effects of hydrazine on the synthesis of Cu2ZnSnSe4 (CZTSe) and Cu2CdSnSe4 (CCTSe) nanocrystals in an autoclave as a function of temperature and time were explored. On heating at 190 degrees C for 24-72 h, pure CZTSe and CCTSe nanocrystals could readily grow in the hydrazine-added solution, while in the hydrazine-free solution the intermediate phases such as ZnSe, Cu2Se, and Cu2SnSe3, and Cu2SnSe3 and CdSe associated with the CZTSe and CCTSe nanocrystals grew, respectively. This result reveals that hydrazine can speed up the synthesis of pure CZTSe and CCTSe nanocrystals via a solvothermal process. The mechanisms for the hydrazine-enhanced growth of CZTSe and CCTSe nanocrystals were discussed. The pure CZTSe and CCTSe nanocrystals were subsequently fabricated to the smooth films by spin coating without further annealing in selenium atmosphere. This processing may be beneficial to the fabrication of the absorber layer for solar cells and thermoelectric devices. (C) 2013 Elsevier B. V. All rights reserved.
引用
收藏
页码:291 / 295
页数:5
相关论文
共 50 条
[31]   Synthesis and Characterization of Cu2ZnSnSe4 by Non-Vacuum Method for Photovoltaic Applications [J].
Sahu, Meenakshi ;
Minnam Reddy, Vasudeva Reddy ;
Patro, Bharati ;
Park, Chinho ;
Kim, Woo Kyoung ;
Sharma, Pratibha .
NANOMATERIALS, 2022, 12 (09)
[32]   Mechanochemical Synthesis of Sustainable Ternary and Quaternary Nanostructured Cu2SnS3, Cu2ZnSnS4, and Cu2ZnSnSe4 Chalcogenides for Thermoelectric Applications [J].
Nautiyal, Himanshu ;
Lohani, Ketan ;
Mukherjee, Binayak ;
Isotta, Eleonora ;
Malagutti, Marcelo Augusto ;
Ataollahi, Narges ;
Pallecchi, Ilaria ;
Putti, Marina ;
Misture, Scott T. ;
Rebuffi, Luca ;
Scardi, Paolo .
NANOMATERIALS, 2023, 13 (02)
[33]   The green hydrothermal synthesis of nanostructured Cu2ZnSnSe4 as solar cell material and study of their structural, optical and morphological properties [J].
Vanalakar, S. A. ;
Agawane, G. L. ;
Kamble, A. S. ;
Patil, P. S. ;
Kim, J. H. .
APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2017, 123 (12)
[34]   One-Step Synthesis of Stoichiometric Cu2ZnSnSe4 as Counter Electrode for Dye-Sensitized Solar Cells [J].
Du, Yan-Fang ;
Fan, Jun-Qi ;
Zhou, Wen-Hui ;
Zhou, Zheng-Ji ;
Jiao, Jie ;
Wu, Si-Xin .
ACS APPLIED MATERIALS & INTERFACES, 2012, 4 (03) :1796-1802
[35]   Enhanced Thermoelectric Performance of Cu2CdSnSe4 by Mn Doping: Experimental and First Principles Studies [J].
Liu, F. S. ;
Zheng, J. X. ;
Huang, M. J. ;
He, L. P. ;
Ao, W. Q. ;
Pan, F. ;
Li, J. Q. .
SCIENTIFIC REPORTS, 2014, 4
[36]   Cu2ZnSnSe4 Photovoltaic Absorber Grown by Vertical Gradient Freeze Technique [J].
Das, Sandip ;
Mandal, Krishna C. .
JAPANESE JOURNAL OF APPLIED PHYSICS, 2013, 52 (12)
[37]   Anisotropic kesterite Cu2ZnSnSe4 colloidal nanoparticles: Photoelectrical and photocatalytic properties [J].
Kush, Priya ;
Deka, Sasanka .
MATERIALS CHEMISTRY AND PHYSICS, 2015, 162 :608-616
[39]   Effect of Self-Seed Inducing on the Growth Mechanism and Photovoltaic Performance of Cu2ZnSnSe4 Thin Films [J].
Liang, Yunfeng ;
Zeng, Chunhong ;
Zeng, Longlong ;
Yan, Genghua ;
Yuan, Ye ;
Lin, Xianzhong ;
Zhu, Hai ;
Mai, Yaohua ;
Hong, Ruijiang .
SOLAR RRL, 2022, 6 (04)
[40]   Classification of Lattice Defects in the Kesterite Cu2ZnSnS4 and Cu2ZnSnSe4 Earth-Abundant Solar Cell Absorbers [J].
Chen, Shiyou ;
Walsh, Aron ;
Gong, Xin-Gao ;
Wei, Su-Huai .
ADVANCED MATERIALS, 2013, 25 (11) :1522-1539