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...

Full description

Bibliographic Details
Published in:2024 IEEE INTERNATIONAL CONFERENCE ON SEMICONDUCTOR ELECTRONICS, ICSE
Main Authors: Arafat, Md Yasir; Wahab, Yasmin Abdul; Islam, Mohammad Aminul; Wan, Sharifah Fatmadiana Bt; Johan, Mohd Rafie; Alias, Nurul Ezaila; Hussin, Hanim
Format: Proceedings Paper
Language:English
Published: IEEE 2024
Subjects:
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
spellingShingle 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

publishDate 2024
container_volume
container_issue
doi_str_mv 10.1109/ICSE62991.2024.10681377
topic Engineering
topic_facet Engineering
accesstype
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)
_version_ 1818940500566081536