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Performance and durability of thin film solar cells via testing the abrasion resistance of broadband anti-reflection coatings

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journal contribution
posted on 2023-03-10, 14:15 authored by Sibel YILMAZ EKİNCİ, Seda SANCAKLI, Adam Law, Michael WallsMichael Walls
Reflection from the front glass of solar modules causes over 4% optical loss leading to a significant decrease in module efficiency. Single layer solution gelation (sol-gel) anti-reflective (AR) coatings are effective over a narrow range of wavelengths, whereas reflection losses can be reduced over a broader wavelength when multilayer broadband AR coatings are applied. In this work, three different multilayer AR coatings including 4-layer SiO2/ZrO2, 4-layer SiO2/ITO, and 6-layer SiO2/ZrO2 were deposited using magnetron sputtering. The abrasion resistance is important because the coatings will be subject to regular cleaning cycles. A variety of abraders including Felt pad, CS-10 and CS-8 under different loads are used. The optical performance and durability of these coatings were analyzed using a spectrophotometer, optical microscope, scanning electron microscope, and scanning white light interferometer. No damage was observed after abrasion of the coatings with a felt pad under 1 and 2 N loads. However, there was a slight increase in Weighted Average Reflection. When coatings were tested with CS-10 and CS-8 abraders, coatings with ZrO2 resulted in higher scratch resistance in comparison to coating with ITO. However, all-dielectric broadband AR coatings are more durable and have better optical performance compared to single layer sol-gel coatings.

Funding

CoA - Active Building Centre (EPSRC)

A durable and scalable anti-soiling coating for solar modules : EP/W010763/1

Active Building Centre: LU Research Cluster Budget (EPSRC) : ;EP/V012053/1

History

School

  • Mechanical, Electrical and Manufacturing Engineering

Published in

Journal of Energy Systems

Volume

6

Issue

1

Pages

33 - 45

Publisher

Journal of Energy Systems

Version

  • VoR (Version of Record)

Rights holder

© the authors

Publisher statement

Published by peer-reviewed open access scientific journal, JES at DergiPark (https://dergipark.org.tr/en/pub/jes)

Acceptance date

2021-12-10

Publication date

2022-03-31

Copyright date

2022

eISSN

2602-2052

Language

  • en

Depositor

Deposit date: 10 March 2023

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