Construction of Self-Assembled Vertical Nanoflakes on Cztsse Thin Films

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Date

2019

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Volume Title

Publisher

Iop Publishing Ltd

Open Access Color

GOLD

Green Open Access

No

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Top 10%
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Average
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Top 10%

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Abstract

Cu2ZnSn(S, Se)(4) (CZTSSe) is a promising alternative absorber material to achieve high power conversion efficiencies, besides its property of involving low-cost and earth-abundant elements when compared to Cu(In, Ga) Se-2 (CIGS) and cadmium telluride (CdTe), to be used in solar cell technology. In this study, a novel fabrication technique was developed by utilizing RF sputtering deposition of CZTSSe thin films having a surface decorated with self-assembled nanoflakes. The formation of nanoflakes was investigated by detailed spectroscopic method of analysis in the effect of each stacked layer deposition in an optimized sequence and the size of nanoflakes by an accurate control of sputtering process including film thickness. Moreover, the effects of substrate temperature on the formation of nanoflakes on the film surface were discussed at a fixed deposition route. One of the main advantages arising from the film surface with self-assembled nanoflakes is the efficient light trapping which decreases the surface reflectance. As a result of the detailed production and characterization studies, it was observed that there was a possibility of repeatable and controllable fabrication sequence for the preparation of CZTSSe thin films with self-textured surfaces yielding low surface reflectance.

Description

Terlemezoglu, Makbule/0000-0001-7912-0176; Çolakoğlu, Tahir/0000-0001-8949-8607; parlak, mehmet/0000-0001-9542-5121; SURUCU, Özge/0000-0002-8478-1267; Gullu, Hasan Huseyin/0000-0001-8541-5309

Keywords

thin film, sputtering, deposition temperature, self-assembled nanostructures, thin film, deposition temperature, sputtering, self-assembled nanostructures

Turkish CoHE Thesis Center URL

Fields of Science

0103 physical sciences, 02 engineering and technology, 0210 nano-technology, 01 natural sciences

Citation

WoS Q

Q3

Scopus Q

Q3
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OpenCitations Citation Count
10

Source

Materials Research Express

Volume

6

Issue

2

Start Page

026421

End Page

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CrossRef : 1

Scopus : 7

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Mendeley Readers : 11

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