0000000000133304

AUTHOR

Annalisa Bruno

0000-0002-6963-1682

showing 2 related works from this author

Self-assembled hierarchical nanostructured perovskites enable highly efficient LEDs via an energy cascade

2018

Metal halide perovskites have established themselves as extraordinary optoelectronic materials, exhibiting promise for applications in large area illumination and displays. However, low luminescence, low efficiencies of the light-emitting diodes (LEDs), and complex preparation methods currently limit further progress towards applications. Here, we report on a new and unique mesoscopic film architecture featuring the self-assembly of 3D formamidinium lead bromide (FAPbBr3) nanocrystals of graded size, coupled with microplatelets of octylammonium lead bromide perovskites that enables an energy cascade, yielding very high-performance light-emitting diodes with emission in the green spectral re…

Materials sciencePhotoluminescence02 engineering and technologyEnergy Cascade010402 general chemistry7. Clean energy01 natural scienceslaw.inventionlawEnvironmental ChemistryPerovskitesDiodePerovskite (structure)Mesoscopic physicsRenewable Energy Sustainability and the Environmentbusiness.industry021001 nanoscience & nanotechnologyPollution0104 chemical sciencesFormamidiniumNuclear Energy and EngineeringOptoelectronicsQuantum efficiency0210 nano-technologybusinessLuminescenceLight-emitting diodeEnergy & Environmental Science
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Highly Efficient Thermally Co-evaporated Perovskite Solar Cells and Mini-modules

2020

The rapid improvement in the power conversion efficiency (PCE) of perovskite solar cells (PSCs) has prompted interest in bringing the technology toward commercialization. Capitalizing on existing industrial processes facilitates the transition from laboratory to production lines. In this work, we prove the scalability of thermally co-evaporated MAPbI3 layers in PSCs and mini-modules. With a combined strategy of active layer engineering, interfacial optimization, surface treatments, and light management, we demonstrate PSCs (0.16 cm2 active area) and mini-modules (21 cm2 active area) achieving record PCEs of 20.28% and 18.13%, respectively. Un-encapsulated PSCs retained ∼90% of their initial…

Materials scienceTandembusiness.industryEnergy conversion efficiencyPhotovoltaic system02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesThermal Evaporation0104 chemical sciencesActive layerGeneral Energy:Physics [Science]PhotovoltaicsLight managementOptoelectronicsEnergiaPerovskite Solar Cells0210 nano-technologybusinessCèl·lules fotoelèctriques
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