Enhanced solar cell performance of Cu2ZnSnSe4 thin films through structural control by using selenide stacked nanolayers in a non-toxic selenium atmosphere
Literature Information
Fang-I Lai, Jui-Fu Yang
A double layer distribution can be observed in Cu2SnZnSe4 (CZTSe) thin films prepared via the selenization of metallic precursors. The double layer structure may cause the back contact of Mo substrates with absorber layers to degrade, thereby suppressing the performance of solar cells. Hence, to eliminate the problematic structure, we reduced the loss of SnSex during the selenization of precursors by modifying the laminated structures of the precursors formed by the deposition of CuxSe and ZnxSn1−x. In addition, the effects of different laminated structures on the thin-film properties of CZTSe were studied through X-ray diffraction analysis, field emission scanning electron microscopy, energy dispersive spectroscopy, secondary-ion mass spectroscopy, and Raman spectroscopy. The results demonstrate that the changes in the laminated structures help in reducing the loss of SnSex and in promoting the reactions between ZnSe and Cu–Sn–Se. As a result, the drawbacks of CZTSe thin films, such as the double layer distribution and existence of air holes, can be addressed. Furthermore, changes in the crystal structures are also noted. Photoluminescence results reveal that signals indicative of ZnSe-related defects were weakened and the band-tail effects became insignificant. Moreover, the internal resistance and quality of the interface in CZTSe solar cells were investigated through electrochemical impedance spectroscopy (EIS). The results prove that the improvement of the double-layer distribution of absorber layers leads to high photoelectric conversion efficiency. Therefore, we modified the laminated structures of precursors to eliminate the distribution of absorber layers, which considerably improved the photoelectric conversion efficiency (from 2.9% to 5.67%).
Recommended Journals
Related Literature
An analytical solution for the diffusion of electrolytes through a charge-mosaic membrane
Andriy E. Yaroshchuk
DOI: 10.1039/B009186N
The investigation of mixed monolayers adsorbed from solution: octane and nonane mixtures on graphite
DOI: 10.1039/A906184C
The structure of molten mixtures of iron(III) chloride with caesium chloride
DOI: 10.1039/A905655F
A π-electron donor–acceptor complex C2H4···Br2 characterised by its rotational spectrum
A. C. Legon, J. M. A. Thumwood
DOI: 10.1039/B100414J
Disappearance of oscillations in the Brusselator on the mesoscopic scale
DOI: 10.1039/B100192M
An amorphous approach to the structure of a Pt–Fe/γ-Al2O3catalyst characterized by XAFS
Li-wu Lin, Yuan Kou, Ming Zou, Zhen Yan
DOI: 10.1039/B100690H
Tannin polymerization: an overview
Myleidi Vera, Bruno F. Urbano
DOI: 10.1039/D1PY00542A
Design, synthesis and use of phthalocyanines as a new class of visible-light photoinitiators for free-radical and cationic polymerizations
Louise Breloy, Ozgur Yavuz, Ismail Yilmaz, Yusuf Yagci, Davy-Louis Versace
DOI: 10.1039/D1PY00462J
Characterisation of cation exchange membrane in hydro-organic media by electrochemistry and Raman spectroscopy
Christophe Innocent, Patrice Huguet, Jean Luc Bribes, Gérald Pourcelly, Mostefa Kameche
DOI: 10.1039/B008318F
You might also like
What are the main uses of (3.beta.)-3-Hydroxy-N,N-dimethyl-chol-5-en-24-amide (CAS: 79066-03-8)?
(3.beta.)-3-Hydroxy-N,N-dimethyl-chol-5-en-24-amide (CAS: 79066-03-8) is primari...
What regulatory guidelines apply to 5-(aminomethyl)-2-methoxyphenol (CAS: 89702-89-6)?
5-(Aminomethyl)-2-methoxyphenol (CAS: 89702-89-6) is classified under GHS as a s...
What is Thieno[2,3-c]pyridin-7(6H)-one (CAS: 28981-13-7)?
Thieno[2,3-c]pyridin-7(6H)-one (CAS: 28981-13-7) is a heterocyclic organic compo...
Is 1-[(6-Methoxy-3-pyridinyl)methyl]-4-piperidinamine dihydrochloride (CAS: 1185311-28-7) safe?
1-[(6-Methoxy-3-pyridinyl)methyl]-4-piperidinamine dihydrochloride is generally ...
What regulatory guidelines apply to [(2E)-3-Phenyl-2-propen-1-yl]phosphonic acid (CAS: 146404-58-2)?
[(2E)-3-Phenyl-2-propen-1-yl]phosphonic acid (CAS: 146404-58-2) is regulated und...
What regulatory guidelines apply to 6-Bromo-7-methoxyquinoline (CAS: 1620515-86-7)?
6-Bromo-7-methoxyquinoline (CAS: 1620515-86-7) falls under the scope of the Glob...
What industries use (2R)-1-(1-Benzofuran-2-yl)-N-propyl-2-pentanamine (CAS: 260550-89-8)?
This compound is primarily used in the pharmaceutical industry for the developme...
What are the main uses of 1-Ethyl-7-[2-methyl-6-(4H-1,2,4-triazol-3-yl)-3-pyridinyl]-3,5-dihydropyrazino[2,3-b]pyrazin-2(1H)-one (CAS: 1228013-15-7)?
1-Ethyl-7-[2-methyl-6-(4H-1,2,4-triazol-3-yl)-3-pyridinyl]-3,5-dihydropyrazino[2...
Are there alternatives to {5-(Acryloylamino)-2-[(dimethylamino)methyl]phenyl}boronic acid (CAS: 1217500-78-1) in synthesis?
Alternative reagents such as 2-[(dimethylamino)methyl]phenylboronic acid or rela...
What is 3-(Piperidin-4-yloxy)pyridine (CAS: 310881-48-2)?
3-(Piperidin-4-yloxy)pyridine (CAS: 310881-48-2) is an organic compound with the...












![N-[(6-Bromo-3-pyridinyl)methyl]ethanamine structure N-[(6-Bromo-3-pyridinyl)methyl]ethanamine structure](https://static.chemtradehub.com/structs/120/120740-05-8-ca55.webp)

![Ethanone, 1-[4-chloro-2-(methylthio)-5-pyrimidinyl]- structure Ethanone, 1-[4-chloro-2-(methylthio)-5-pyrimidinyl]- structure](https://static.chemtradehub.com/structs/661/66116-82-3-863e.webp)
![4-[(4-Bromophenyl)sulfonyl]thiomorpholine structure 4-[(4-Bromophenyl)sulfonyl]thiomorpholine structure](https://static.chemtradehub.com/structs/223/223555-81-5-2d67.webp)