Fabrication of 20.19% Efficient Single-Crystalline Silicon Solar Cell with Inverted Pyramid Microstructure

Abstract This paper reports inverted pyramid microstructure-based single-crystalline silicon (sc-Si) solar cell with a conversion efficiency up to 20.19% in standard size of 156.75 × 156.75 mm2. The inverted pyramid microstructures were fabricated jointly by metal-assisted chemical etching process (...

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Main Authors: Chunyang Zhang, Lingzhi Chen, Yingjie Zhu, Zisheng Guan
Format: Article
Language:English
Published: SpringerOpen 2018-04-01
Series:Nanoscale Research Letters
Subjects:
Online Access:http://link.springer.com/article/10.1186/s11671-018-2502-9
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spelling doaj-536a41a2ac144c31a812c2a4ba9bbafc2020-11-24T22:02:24ZengSpringerOpenNanoscale Research Letters1931-75731556-276X2018-04-011311810.1186/s11671-018-2502-9Fabrication of 20.19% Efficient Single-Crystalline Silicon Solar Cell with Inverted Pyramid MicrostructureChunyang Zhang0Lingzhi Chen1Yingjie Zhu2Zisheng Guan3College of Materials Science and Engineering, Nanjing Tech UniversityCollege of Materials Science and Engineering, Nanjing Tech UniversityCollege of Materials Science and Engineering, Nanjing Tech UniversityCollege of Materials Science and Engineering, Nanjing Tech UniversityAbstract This paper reports inverted pyramid microstructure-based single-crystalline silicon (sc-Si) solar cell with a conversion efficiency up to 20.19% in standard size of 156.75 × 156.75 mm2. The inverted pyramid microstructures were fabricated jointly by metal-assisted chemical etching process (MACE) with ultra-low concentration of silver ions and optimized alkaline anisotropic texturing process. And the inverted pyramid sizes were controlled by changing the parameters in both MACE and alkaline anisotropic texturing. Regarding passivation efficiency, the textured sc-Si with normal reflectivity of 9.2% and inverted pyramid size of 1 μm was used to fabricate solar cells. The best batch of solar cells showed a 0.19% higher of conversion efficiency and a 0.22 mA cm−2 improvement in short-circuit current density, and the excellent photoelectric property surpasses that of the same structure solar cell reported before. This technology shows great potential to be an alternative for large-scale production of high efficient sc-Si solar cells in the future.http://link.springer.com/article/10.1186/s11671-018-2502-9Inverted pyramidsc-Si solar cellMetal-assisted chemical etchingAlkaline anisotropic texturing
collection DOAJ
language English
format Article
sources DOAJ
author Chunyang Zhang
Lingzhi Chen
Yingjie Zhu
Zisheng Guan
spellingShingle Chunyang Zhang
Lingzhi Chen
Yingjie Zhu
Zisheng Guan
Fabrication of 20.19% Efficient Single-Crystalline Silicon Solar Cell with Inverted Pyramid Microstructure
Nanoscale Research Letters
Inverted pyramid
sc-Si solar cell
Metal-assisted chemical etching
Alkaline anisotropic texturing
author_facet Chunyang Zhang
Lingzhi Chen
Yingjie Zhu
Zisheng Guan
author_sort Chunyang Zhang
title Fabrication of 20.19% Efficient Single-Crystalline Silicon Solar Cell with Inverted Pyramid Microstructure
title_short Fabrication of 20.19% Efficient Single-Crystalline Silicon Solar Cell with Inverted Pyramid Microstructure
title_full Fabrication of 20.19% Efficient Single-Crystalline Silicon Solar Cell with Inverted Pyramid Microstructure
title_fullStr Fabrication of 20.19% Efficient Single-Crystalline Silicon Solar Cell with Inverted Pyramid Microstructure
title_full_unstemmed Fabrication of 20.19% Efficient Single-Crystalline Silicon Solar Cell with Inverted Pyramid Microstructure
title_sort fabrication of 20.19% efficient single-crystalline silicon solar cell with inverted pyramid microstructure
publisher SpringerOpen
series Nanoscale Research Letters
issn 1931-7573
1556-276X
publishDate 2018-04-01
description Abstract This paper reports inverted pyramid microstructure-based single-crystalline silicon (sc-Si) solar cell with a conversion efficiency up to 20.19% in standard size of 156.75 × 156.75 mm2. The inverted pyramid microstructures were fabricated jointly by metal-assisted chemical etching process (MACE) with ultra-low concentration of silver ions and optimized alkaline anisotropic texturing process. And the inverted pyramid sizes were controlled by changing the parameters in both MACE and alkaline anisotropic texturing. Regarding passivation efficiency, the textured sc-Si with normal reflectivity of 9.2% and inverted pyramid size of 1 μm was used to fabricate solar cells. The best batch of solar cells showed a 0.19% higher of conversion efficiency and a 0.22 mA cm−2 improvement in short-circuit current density, and the excellent photoelectric property surpasses that of the same structure solar cell reported before. This technology shows great potential to be an alternative for large-scale production of high efficient sc-Si solar cells in the future.
topic Inverted pyramid
sc-Si solar cell
Metal-assisted chemical etching
Alkaline anisotropic texturing
url http://link.springer.com/article/10.1186/s11671-018-2502-9
work_keys_str_mv AT chunyangzhang fabricationof2019efficientsinglecrystallinesiliconsolarcellwithinvertedpyramidmicrostructure
AT lingzhichen fabricationof2019efficientsinglecrystallinesiliconsolarcellwithinvertedpyramidmicrostructure
AT yingjiezhu fabricationof2019efficientsinglecrystallinesiliconsolarcellwithinvertedpyramidmicrostructure
AT zishengguan fabricationof2019efficientsinglecrystallinesiliconsolarcellwithinvertedpyramidmicrostructure
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