Silicon nanopillars array surface texturing for solar cell application

Silicon (Si) has been used as the most common light absorber material in solar cell applications, and is expected to be the dominant photovoltaic (PV) material due to its abundance, environmental friendliness, and a well developed process technology in the future too. The conventional solar cell uti...

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Main Author: Wong, She Mein.
Other Authors: Wong Kin Shun, Terence
Format: Theses and Dissertations
Language:English
Published: 2013
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Online Access:http://hdl.handle.net/10356/54197
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-541972023-07-04T16:21:23Z Silicon nanopillars array surface texturing for solar cell application Wong, She Mein. Wong Kin Shun, Terence School of Electrical and Electronic Engineering DRNTU::Engineering::Electrical and electronic engineering::Nanoelectronics Silicon (Si) has been used as the most common light absorber material in solar cell applications, and is expected to be the dominant photovoltaic (PV) material due to its abundance, environmental friendliness, and a well developed process technology in the future too. The conventional solar cell utilizes high-cost single-crystalline Si as its absorber material. This is because the long minority carrier diffusion length of a highly pure material allows for efficient collection of the photo-generated carriers. However, the single-crystalline Si must be thicker than the optical thickness (the film thickness of a semiconductor required to absorb 90% of the solar spectrum, which is 125 µm for Si) to absorb the solar spectrum effectively. PV modules exploiting low-grade Si thin films (e.g. poly-crystalline Si, multi-crystalline Si, and amorphous Si thin film) to reduce the manufacturing cost typically suffer from relatively low power conversion efficiency compared to the conventional crystalline silicon modules. This is due to its poor solar spectrum absorption (limited by the film thickness) and inefficient photo-generated carrier collection. One of the promising novel approaches to improve the efficiency of the thin film solar cells is to enhance their light trapping by surface texturing. Arrays of Si nanopillar (SiNP) or also known as Si nanowires (SiNW), have attracted much attention for solar cell applications stemming from their property of strong antireflection and the capability of decoupling the light absorption and photo-generated carrier collection. With SiNP array surface texturing, the optical path lengths of the incident photons are prolonged by the interaction between the incident light and SiNP arrays, enhancing the total light absorption to compensate for the efficiency loss caused by the reduced material quality and quantity. This thesis studies the optical and electrical properties of Si nanopillar arrays via simulation and a design guideline is provided for optimum cell power conversion efficiency. The thesis then experimentally explores the impact of the large-scale rational design based periodic SiNP array structural parameters (e.g. diameter/ periodicity/ height) on the reflectance and hence the absorption of the SiNP, and the results are in consistent with the theoretical prediction. A record high short circuit current density (Jsc) of 30.96 mA/cm2 as of 2011 is achieved using axial p-n junction SiNP surface textured solar cell. This implies the SiNP array is a suitable and promising texturing technology for photovoltaic application. Doctor of Philosophy (EEE) 2013-06-14T08:04:39Z 2013-06-14T08:04:39Z 2012 2012 Thesis http://hdl.handle.net/10356/54197 en 154 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Electrical and electronic engineering::Nanoelectronics
spellingShingle DRNTU::Engineering::Electrical and electronic engineering::Nanoelectronics
Wong, She Mein.
Silicon nanopillars array surface texturing for solar cell application
description Silicon (Si) has been used as the most common light absorber material in solar cell applications, and is expected to be the dominant photovoltaic (PV) material due to its abundance, environmental friendliness, and a well developed process technology in the future too. The conventional solar cell utilizes high-cost single-crystalline Si as its absorber material. This is because the long minority carrier diffusion length of a highly pure material allows for efficient collection of the photo-generated carriers. However, the single-crystalline Si must be thicker than the optical thickness (the film thickness of a semiconductor required to absorb 90% of the solar spectrum, which is 125 µm for Si) to absorb the solar spectrum effectively. PV modules exploiting low-grade Si thin films (e.g. poly-crystalline Si, multi-crystalline Si, and amorphous Si thin film) to reduce the manufacturing cost typically suffer from relatively low power conversion efficiency compared to the conventional crystalline silicon modules. This is due to its poor solar spectrum absorption (limited by the film thickness) and inefficient photo-generated carrier collection. One of the promising novel approaches to improve the efficiency of the thin film solar cells is to enhance their light trapping by surface texturing. Arrays of Si nanopillar (SiNP) or also known as Si nanowires (SiNW), have attracted much attention for solar cell applications stemming from their property of strong antireflection and the capability of decoupling the light absorption and photo-generated carrier collection. With SiNP array surface texturing, the optical path lengths of the incident photons are prolonged by the interaction between the incident light and SiNP arrays, enhancing the total light absorption to compensate for the efficiency loss caused by the reduced material quality and quantity. This thesis studies the optical and electrical properties of Si nanopillar arrays via simulation and a design guideline is provided for optimum cell power conversion efficiency. The thesis then experimentally explores the impact of the large-scale rational design based periodic SiNP array structural parameters (e.g. diameter/ periodicity/ height) on the reflectance and hence the absorption of the SiNP, and the results are in consistent with the theoretical prediction. A record high short circuit current density (Jsc) of 30.96 mA/cm2 as of 2011 is achieved using axial p-n junction SiNP surface textured solar cell. This implies the SiNP array is a suitable and promising texturing technology for photovoltaic application.
author2 Wong Kin Shun, Terence
author_facet Wong Kin Shun, Terence
Wong, She Mein.
format Theses and Dissertations
author Wong, She Mein.
author_sort Wong, She Mein.
title Silicon nanopillars array surface texturing for solar cell application
title_short Silicon nanopillars array surface texturing for solar cell application
title_full Silicon nanopillars array surface texturing for solar cell application
title_fullStr Silicon nanopillars array surface texturing for solar cell application
title_full_unstemmed Silicon nanopillars array surface texturing for solar cell application
title_sort silicon nanopillars array surface texturing for solar cell application
publishDate 2013
url http://hdl.handle.net/10356/54197
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