Double grating high efficiency nanostructured silicon-based ultra-thin solar cells

In this paper, the cylindrical, conical and parabolic nanostructures inherited from self-organized anodic aluminum oxide (AAO) are applied to silicon-based ultra-thin solar cells aiming for a new design concept for low-cost, high-efficiency double-grating solar cells. Numerical results reveal that t...

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Main Authors: Tangyou Sun, Hui Shi, Le Cao, Yun Liu, Jie Tu, Meijun Lu, Haiou Li, Wenning Zhao, Qi Li, Tao Fu, Fabi Zhang
Format: Article
Language:English
Published: Elsevier 2020-12-01
Series:Results in Physics
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2211379720319057
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spelling doaj-9d51a7a3b9af435183ff2fe5aed5fc962020-12-25T05:08:34ZengElsevierResults in Physics2211-37972020-12-0119103442Double grating high efficiency nanostructured silicon-based ultra-thin solar cellsTangyou Sun0Hui Shi1Le Cao2Yun Liu3Jie Tu4Meijun Lu5Haiou Li6Wenning Zhao7Qi Li8Tao Fu9Fabi Zhang10Guangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, ChinaGuangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, ChinaGuangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, ChinaGuangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, ChinaGuangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, ChinaGuangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, ChinaGuangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, China; Corresponding authors.Institute of Engineering Research, Jiangxi University of Science and Technology, Ganzhou 341000, ChinaGuangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, ChinaGuangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, ChinaGuangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, China; Corresponding authors.In this paper, the cylindrical, conical and parabolic nanostructures inherited from self-organized anodic aluminum oxide (AAO) are applied to silicon-based ultra-thin solar cells aiming for a new design concept for low-cost, high-efficiency double-grating solar cells. Numerical results reveal that the optimal bottom metal grating can enhance the absorption capacity of ultra-thin solar cell at 0.5 µm–1.1 µm waveband with a very small parasitic absorption. Meanwhile the surface grating with a period of 0.1 µm can strongly enhance the absorption of solar cell in 0.3 µm–0.5 µm waveband. Consequently, the silicon-based ultra-thin solar cell inherited their characteristics very well when both the optimal silicon surface grating and bottom metal grating are applied at the same time, thereby increasing the absorption rate of the solar cell in the entire waveband. Compared to the solar cell with single surface grating and the one with single bottom metal grating, the photocurrent density increments of the double-grating nanostructured solar cells can reach as high as 75.47% and 40.69%, respectively. Further results show that the conical and parabolic nanostructured gratings have higher light absorption efficiency and lower structure morphology-dependent sensitivity than the cylindrical nanostructured one, which is more conducive to the application of high efficiency ultra-thin solar cells.http://www.sciencedirect.com/science/article/pii/S2211379720319057Double grating solar cellNanostructureAnodic aluminum oxide (AAO)Photocurrent density
collection DOAJ
language English
format Article
sources DOAJ
author Tangyou Sun
Hui Shi
Le Cao
Yun Liu
Jie Tu
Meijun Lu
Haiou Li
Wenning Zhao
Qi Li
Tao Fu
Fabi Zhang
spellingShingle Tangyou Sun
Hui Shi
Le Cao
Yun Liu
Jie Tu
Meijun Lu
Haiou Li
Wenning Zhao
Qi Li
Tao Fu
Fabi Zhang
Double grating high efficiency nanostructured silicon-based ultra-thin solar cells
Results in Physics
Double grating solar cell
Nanostructure
Anodic aluminum oxide (AAO)
Photocurrent density
author_facet Tangyou Sun
Hui Shi
Le Cao
Yun Liu
Jie Tu
Meijun Lu
Haiou Li
Wenning Zhao
Qi Li
Tao Fu
Fabi Zhang
author_sort Tangyou Sun
title Double grating high efficiency nanostructured silicon-based ultra-thin solar cells
title_short Double grating high efficiency nanostructured silicon-based ultra-thin solar cells
title_full Double grating high efficiency nanostructured silicon-based ultra-thin solar cells
title_fullStr Double grating high efficiency nanostructured silicon-based ultra-thin solar cells
title_full_unstemmed Double grating high efficiency nanostructured silicon-based ultra-thin solar cells
title_sort double grating high efficiency nanostructured silicon-based ultra-thin solar cells
publisher Elsevier
series Results in Physics
issn 2211-3797
publishDate 2020-12-01
description In this paper, the cylindrical, conical and parabolic nanostructures inherited from self-organized anodic aluminum oxide (AAO) are applied to silicon-based ultra-thin solar cells aiming for a new design concept for low-cost, high-efficiency double-grating solar cells. Numerical results reveal that the optimal bottom metal grating can enhance the absorption capacity of ultra-thin solar cell at 0.5 µm–1.1 µm waveband with a very small parasitic absorption. Meanwhile the surface grating with a period of 0.1 µm can strongly enhance the absorption of solar cell in 0.3 µm–0.5 µm waveband. Consequently, the silicon-based ultra-thin solar cell inherited their characteristics very well when both the optimal silicon surface grating and bottom metal grating are applied at the same time, thereby increasing the absorption rate of the solar cell in the entire waveband. Compared to the solar cell with single surface grating and the one with single bottom metal grating, the photocurrent density increments of the double-grating nanostructured solar cells can reach as high as 75.47% and 40.69%, respectively. Further results show that the conical and parabolic nanostructured gratings have higher light absorption efficiency and lower structure morphology-dependent sensitivity than the cylindrical nanostructured one, which is more conducive to the application of high efficiency ultra-thin solar cells.
topic Double grating solar cell
Nanostructure
Anodic aluminum oxide (AAO)
Photocurrent density
url http://www.sciencedirect.com/science/article/pii/S2211379720319057
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