Fabrication of Double Antireflection Layer of SiO2/SiNx via Spin Coating and Brush Painting for Enhanced Performance of Silicon Solar Cells

Author:

Choi Jaeho1,Shah Deb Kumar2,Shaheer Akhtar M.1,Umar Ahmad3,Fouad Hassan4,Jung In-Sung1

Affiliation:

1. New and Renewable Energy Materials Development Center (NewREC), Jeonbuk National University, Jeonbuk, 56332, Republic of Korea

2. School of Semiconductor and Chemical Engineering, Jeonbuk National University, Jeonju, 54896, Republic of Korea

3. Department of Materials Science and Engineering, The Ohio State University, Columbus, OH, 43210, USA

4. Applied Medical Science Department, Community College, King Saud University, Riyadh, P.O. Box 11433, Saudi Arabia

Abstract

This research investigates the optical, structural, and photovoltaic attributes of a dual antireflection (AR) layer deposition on crystalline silicon (c–Si) solar cells using second SiO2 layer on SiNx AR. The second SiO2 AR layer on a SiNx AR-based c–Si solar cell was fabricated utilizing both spin coating and brush painting techniques, resulting in a unique double (SiO2/SiNx) AR layer. The initial SiNx AR layer was deposited on the c–Si solar cell through plasma-enhanced chemical vapor deposition (PECVD), while the SiO2 layer was subsequently applied using two different methods such as spin coating at 5000 rpm for 20 s and brush painting, separately, on Si solar cell. The double (SiO2/SiNx) AR layer on the Si wafer exhibited a substantial reduction in average reflectance, approximately 6.02% through spin coating and 5.17% through brush painting, within the wavelength range of 400–1000 nm when compared to a textured silicon wafer. The fabricated solar cell featuring the double (SiO2/SiNx) AR layer, achieved a power conversion efficiency of 15.21% and 17.57% for spin coating and brush painting, respectively. The utilization of the double (SiO2/SiNx) AR layer through brush painting on the Si solar cell not only provided low reflectance but also demonstrated excellent surface properties, making it a promising candidate for the cost-effective fabrication of high-performance Si solar cells.

Publisher

American Scientific Publishers

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