Towards improved cover glasses for photovoltaic devices

К улучшенным покровным стеклам для фотоэлектрических устройств
Benjamin Brink Allsopp, Robin Orman, Simon R. Johnson, Ian Baistow, Gavin Sanderson, Peter Sundberg, Christina Stålhandske, Lina Grund, A. M. Andersson, Jonathan Booth, Paul A. Bingham, Stefan Karlsson
2020-08-19

UV protectioncrack resistancedownconversion luminescenceglass composition optimizationphotovoltaic cover glass
Abstract For the solar energy industry to increase its competitiveness, there is a global drive to lower the cost of solar‐generated electricity. Photovoltaic (PV) module assembly is material‐demanding, and the cover glass constitutes a significant proportion of the cost. Currently, 3‐mm‐thick glass is the predominant cover material for PV modules, accounting for 10%–25% of the total cost. Here, we review the state‐of‐the‐art of cover glasses for PV modules and present our recent results for improvement of the glass. These improvements were demonstrated in terms of mechanical, chemical and optical properties by optimizing the glass composition, including addition of novel dopants, to produce cover glasses that can provide (i) enhanced UV protection of polymeric PV module components, potentially increasing module service lifetimes; (ii) re‐emission of a proportion of the absorbed UV photon energy as visible photons capable of being absorbed by the solar cells, thereby increasing PV module efficiencies and (iii) successful laboratory‐scale demonstration of proof of concept, with increases of 1%–6% in I sc and 1%–8% in I pm . Improvements in both chemical and crack resistance of the cover glass were also achieved through modest chemical reformulation, highlighting what may be achievable within existing manufacturing technology constraints.
1
Cover glass represents a substantial photovoltaic module cost component, accounting for approximately 10%–25% of total module cost.
2
Doped cover glasses can re-emit absorbed ultraviolet energy as visible photons usable by solar cells, increasing laboratory-scale short-circuit current (I sc) by 1%–6% and operating current (I pm) by 1%–8%.
3
Enhanced ultraviolet protection of polymeric module components could potentially extend photovoltaic module service lifetimes.
4
Glass composition optimization, including novel dopants, improved the mechanical, chemical, and optical properties of photovoltaic cover glasses.
5
Modest chemical reformulation improved the cover glass’s chemical and crack resistance within existing manufacturing technology constraints.

cover glasses for photovoltaic (PV) modules

improvement of the mechanical, chemical, and optical properties of PV cover glasses to enhance UV protection, photon re-emission, module efficiency, and resistance to chemical attack and cracking

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2020-08-19
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Authors
Benjamin Brink Allsopp
Robin Orman
Simon R. Johnson
Ian Baistow
Gavin Sanderson
Peter Sundberg
Christina Stålhandske
Lina Grund
A. M. Andersson
Jonathan Booth
Paul A. Bingham
Stefan Karlsson
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