Self-Heating of Planar Perovskite Solar Cells Depending on Active Material Properties

dc.contributor.authorKamppinen Aleksi
dc.contributor.authorPalonen Heikki
dc.contributor.authorMiettunen Kati
dc.contributor.organizationfi=materiaalitekniikka|en=Materials Engineering|
dc.contributor.organization-code1.2.246.10.2458963.20.80931480620
dc.converis.publication-id404719079
dc.converis.urlhttps://research.utu.fi/converis/portal/Publication/404719079
dc.date.accessioned2025-08-28T00:09:19Z
dc.date.available2025-08-28T00:09:19Z
dc.description.abstract<p>The effect of perovskite material properties on the power conversion to electricity and, especially, to heat and the operation temperature of perovskite solar cells (PSCs) was simulated. The operation temperature is topical because the technology is progressing toward commercialization: first, because cells are subject to varying outdoor conditions, and second, because commercial use benefits from accurate power production prediction, in which the cell temperature is an influential factor. This article products insights into how perovskite absorber properties, including the band gap (<em>E</em><sub>g</sub>), diffusion length, and layer thickness, affect the heat production and temperature coefficient of planar PSCs based on optoelectronic simulations. The change in heat production with an increasing band gap was observed to be quasi-linear: self-heating decreased by approximately −0.38 W/(m<sup>2</sup> meV) until <em>E</em><sub>g</sub> = 1.7 eV, after which the slope slightly relaxed. Over the studied band gap range of 1.2–2.2 eV, the change in heat production as a function of the band gap resulted in the self-heating of a small band gap (<em>E</em><sub>g</sub> = 1.2 eV) device, 575 W/m<sup>2</sup>, to be more than twice that of a large band gap (<em>E</em><sub>g</sub> = 2.2 eV) device, 253 W/m<sup>2</sup>. Further, the steady-state operating temperature at the maximum power point was modeled and shown to significantly vary between 30 °C for a large (2.2 eV) band gap device and 44 °C for a small (1.2 eV) band gap device in the example outdoor conditions of 1000 W/m<sup>2</sup> irradiance, 20 °C ambient temperature, and ca. 1 m/s wind speed. The self-heating-induced temperature increment subsequently affected the power production predictions of different band gap devices, from −6 to −1%. The results presented here can improve the operation temperature and power production predictions of PSCs with alternative perovskite absorbers.<br></p>
dc.format.pagerange4324
dc.format.pagerange4334
dc.identifier.eissn2574-0962
dc.identifier.jour-issn2574-0962
dc.identifier.olddbid205278
dc.identifier.oldhandle10024/188305
dc.identifier.urihttps://www.utupub.fi/handle/11111/54240
dc.identifier.urlhttps://doi.org/10.1021/acsaem.4c00077
dc.identifier.urnURN:NBN:fi-fe2025082790898
dc.okm.affiliatedauthorKamppinen, Aleksi
dc.okm.discipline216 Materials engineeringen_GB
dc.okm.discipline216 Materiaalitekniikkafi_FI
dc.okm.internationalcopublicationnot an international co-publication
dc.okm.internationalityInternational publication
dc.okm.typeA1 ScientificArticle
dc.publisherAmerican Chemical Society
dc.publisher.countryUnited Statesen_GB
dc.publisher.countryYhdysvallat (USA)fi_FI
dc.publisher.country-codeUS
dc.relation.doi10.1021/acsaem.4c00077
dc.relation.ispartofjournalACS Applied Energy Materials
dc.relation.issue10
dc.relation.volume7
dc.source.identifierhttps://www.utupub.fi/handle/10024/188305
dc.titleSelf-Heating of Planar Perovskite Solar Cells Depending on Active Material Properties
dc.year.issued2024

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