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Efficient and stable perovskite-silicon tandem solar cells through contact displacement by MgF x .

Jiang LiuMichele De BastianiErkan AydinGeorge T HarrisonYajun GaoRakesh R PradhanMathan K EswaranMukunda MandalWenbo YanAkmaral SeitkhanMaxime BabicsAnand Selvin SubbiahEsma UgurFuzong XuLujia XuMingcong WangAtteq Ur RehmanArsalan RazzaqJingxuan KangRandi AzmiAhmed Ali SaidFurkan H IsikgorThomas G AllenDenis AndrienkoUdo SchwingenschlöglFrédéric LaquaiStefaan De Wolf
Published in: Science (New York, N.Y.) (2022)
The performance of perovskite solar cells with inverted polarity (p-i-n) is still limited by recombination at their electron extraction interface, which also lowers the power conversion efficiency (PCE) of p-i-n perovskite-silicon tandem solar cells. A MgF x interlayer with thickness of ~1 nanometer at the perovskite/C 60 interface favorably adjusts the surface energy of the perovskite layer through thermal evaporation, which facilitates efficient electron extraction and displaces C 60 from the perovskite surface to mitigate nonradiative recombination. These effects enable a champion open-circuit voltage of 1.92 volts, an improved fill factor of 80.7%, and an independently certified stabilized PCE of 29.3% for a monolithic perovskite-silicon tandem solar cell ~1 square centimeter in area. The tandem retained ~95% of its initial performance after damp-heat testing (85°C at 85% relative humidity) for >1000 hours.
Keyphrases
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  • perovskite solar cells
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