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Effects of Manufacturing-Induced Initial Material State and Lamination Duration on Thermomechanical Properties of Photovoltaic Encapsulants

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cris.virtual.department#PLACEHOLDER_PARENT_METADATA_VALUE#
cris.virtual.orcid0000-0002-9221-4932
cris.virtualsource.department6135dbc2-f1c6-4a89-ab31-0608a53994c6
cris.virtualsource.orcid6135dbc2-f1c6-4a89-ab31-0608a53994c6
dc.contributor.authorPervan, Nikolina
dc.contributor.authorGeier, Jutta
dc.contributor.authorDaenen, Michaël
dc.contributor.authorOreski, Gernot
dc.date.accessioned2026-09-28T09:30:56Z
dc.date.available2026-09-28T09:30:56Z
dc.date.createdwos2026
dc.date.issued2026
dc.description.abstractEncapsulants are vital for the structural integrity and protection of photovoltaic (PV) modules, yet the impact of processing history and crosslinking on their thermomechanical behaviour is often oversimplified in numerical simulations. This study experimentally investigates how lamination conditions affect six encapsulant types, including crosslinking (EVA, POE), noncrosslinking (TPO), and coextruded (EPE) materials. The crosslinking behaviour was characterized using differential scanning calorimetry (DSC) and Fourier transform infrared spectroscopy (FTIR), while thermomechanical properties were assessed via digital image correlation. Results indicate that conventional DSC‐based methods for the calculations of degree of crosslinking, while standard for EVA, have significant limitations when applied to multilayer encapsulants. Fourier transform infrared spectroscopy in attenuated total reflection mode combined with principal component analysis proved to be an effective, rapid method for qualitative clustering of crosslinked encapsulants. The findings reveal that manufacturing history strongly influences prelamination behaviour, even for the materials labelled under the same commercial nomenclature. Increased lamination duration drives encapsulants toward more isotropic coefficients of thermal expansion (CTE), with noncrosslinking materials reaching final CTE values faster. The presented dataset may support future investigations of stress development, thermomechanical interactions, and material selection in conventional and emerging PV module architectures.
dc.description.wosFundingTextThis study was supported by Austrian Climate and Energy Fund and the Austrian Research Promotion Agency (Grant FO999915062), COMET-Competence Centers for Excellent Technologies (Grant 911658).
dc.identifier.doi10.1002/aesr.70252
dc.identifier.issn2699-9412
dc.identifier.urihttps://imec-publications.be/handle/20.500.12860/60499
dc.language.isoeng
dc.provenance.editstepusergreet.vanhoof@imec.be
dc.publisherWILEY-V C H VERLAG GMBH
dc.source.beginpagee70252
dc.source.issue8
dc.source.journalADVANCED ENERGY AND SUSTAINABILITY RESEARCH
dc.source.numberofpages15
dc.source.volume7
dc.subject.keywordsETHYLENE-VINYL ACETATE
dc.subject.keywordsRESIDUAL-STRESS
dc.subject.keywordsCROSS-LINKING
dc.subject.keywordsSOLAR-CELLS
dc.subject.keywordsPV MODULES
dc.subject.keywordsCOPOLYMER
dc.subject.keywordsEXTRUSION
dc.title

Effects of Manufacturing-Induced Initial Material State and Lamination Duration on Thermomechanical Properties of Photovoltaic Encapsulants

dc.typeJournal article
dspace.entity.typePublication
imec.internal.crawledAt2026-08-27
imec.internal.sourcecrawler
imec.internal.wosCreatedAt2026-09-07
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