Evaluating the Impact of Upright and Inverted Pyramid Microstructures on the Optical Performance of Single Crystalline Silicon Solar Cells
This study examines the optical performance of single crystalline silicon solar cells with upright and inverted pyramid microstructures fabricated via Alkaline Chemical Etching and Metal Assisted Chemical Etching (MACE), respectively. Spectrophotometric and Finite Difference Time Domain (FDTD) analy...
Published in: | 2024 IEEE INTERNATIONAL CONFERENCE ON SEMICONDUCTOR ELECTRONICS, ICSE |
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Main Authors: | , , , , , , , |
Format: | Proceedings Paper |
Language: | English |
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IEEE
2024
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Online Access: | https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001329134600037 |
author |
Arafat Md Yasir; Wahab Yasmin Abdul; Islam Mohammad Aminul; Wan Sharifah Fatmadiana Bt; Johan Mohd Rafie; Alias Nurul Ezaila; Hussin Hanim |
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Arafat Md Yasir; Wahab Yasmin Abdul; Islam Mohammad Aminul; Wan Sharifah Fatmadiana Bt; Johan Mohd Rafie; Alias Nurul Ezaila; Hussin Hanim Evaluating the Impact of Upright and Inverted Pyramid Microstructures on the Optical Performance of Single Crystalline Silicon Solar Cells Engineering |
author_facet |
Arafat Md Yasir; Wahab Yasmin Abdul; Islam Mohammad Aminul; Wan Sharifah Fatmadiana Bt; Johan Mohd Rafie; Alias Nurul Ezaila; Hussin Hanim |
author_sort |
Arafat |
spelling |
Arafat, Md Yasir; Wahab, Yasmin Abdul; Islam, Mohammad Aminul; Wan, Sharifah Fatmadiana Bt; Johan, Mohd Rafie; Alias, Nurul Ezaila; Hussin, Hanim Evaluating the Impact of Upright and Inverted Pyramid Microstructures on the Optical Performance of Single Crystalline Silicon Solar Cells 2024 IEEE INTERNATIONAL CONFERENCE ON SEMICONDUCTOR ELECTRONICS, ICSE English Proceedings Paper This study examines the optical performance of single crystalline silicon solar cells with upright and inverted pyramid microstructures fabricated via Alkaline Chemical Etching and Metal Assisted Chemical Etching (MACE), respectively. Spectrophotometric and Finite Difference Time Domain (FDTD) analyses were used to evaluate light absorption and optical confinement. The weighted average reflectance results showed that inverted pyramids made with MACE had a significantly lower reflectance of 4.40% compared to 7.89% for upright pyramids, indicating superior light-trapping efficiency. This advantage is attributed to the favorable angular geometry and finer resolution of the MACE-fabricated inverted pyramids. These findings emphasize the importance of microstructural design and advanced fabrication techniques in enhancing the optical properties of photovoltaic materials, suggesting that tailored microfabrication strategies could significantly improve solar cell efficiency. IEEE 2024 10.1109/ICSE62991.2024.10681377 Engineering WOS:001329134600037 https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001329134600037 |
title |
Evaluating the Impact of Upright and Inverted Pyramid Microstructures on the Optical Performance of Single Crystalline Silicon Solar Cells |
title_short |
Evaluating the Impact of Upright and Inverted Pyramid Microstructures on the Optical Performance of Single Crystalline Silicon Solar Cells |
title_full |
Evaluating the Impact of Upright and Inverted Pyramid Microstructures on the Optical Performance of Single Crystalline Silicon Solar Cells |
title_fullStr |
Evaluating the Impact of Upright and Inverted Pyramid Microstructures on the Optical Performance of Single Crystalline Silicon Solar Cells |
title_full_unstemmed |
Evaluating the Impact of Upright and Inverted Pyramid Microstructures on the Optical Performance of Single Crystalline Silicon Solar Cells |
title_sort |
Evaluating the Impact of Upright and Inverted Pyramid Microstructures on the Optical Performance of Single Crystalline Silicon Solar Cells |
container_title |
2024 IEEE INTERNATIONAL CONFERENCE ON SEMICONDUCTOR ELECTRONICS, ICSE |
language |
English |
format |
Proceedings Paper |
description |
This study examines the optical performance of single crystalline silicon solar cells with upright and inverted pyramid microstructures fabricated via Alkaline Chemical Etching and Metal Assisted Chemical Etching (MACE), respectively. Spectrophotometric and Finite Difference Time Domain (FDTD) analyses were used to evaluate light absorption and optical confinement. The weighted average reflectance results showed that inverted pyramids made with MACE had a significantly lower reflectance of 4.40% compared to 7.89% for upright pyramids, indicating superior light-trapping efficiency. This advantage is attributed to the favorable angular geometry and finer resolution of the MACE-fabricated inverted pyramids. These findings emphasize the importance of microstructural design and advanced fabrication techniques in enhancing the optical properties of photovoltaic materials, suggesting that tailored microfabrication strategies could significantly improve solar cell efficiency. |
publisher |
IEEE |
issn |
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publishDate |
2024 |
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doi_str_mv |
10.1109/ICSE62991.2024.10681377 |
topic |
Engineering |
topic_facet |
Engineering |
accesstype |
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id |
WOS:001329134600037 |
url |
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001329134600037 |
record_format |
wos |
collection |
Web of Science (WoS) |
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1818940500566081536 |