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Infiltration of CsPbI 3 :EuI 2 Perovskites into TiO 2 Spongy Layers Deposited by gig-lox Sputtering Processes.

Authors :
Spampinato, Carlo
La Magna, Paola
Valastro, Salvatore
Smecca, Emanuele
Arena, Valentina
Bongiorno, Corrado
Mannino, Giovanni
Fazio, Enza
Corsaro, Carmelo
Neri, Fortunato
Alberti, Alessandra
Source :
Solar; Sep2023, Vol. 3 Issue 3, p347-361, 15p
Publication Year :
2023

Abstract

Perovskite solar cells have become a popular alternative to traditional silicon solar cells due to their potential to provide high-efficiency, low-cost, and lightweight solar energy harvesting solutions. However, the multilayer architecture of perovskite solar cells demands careful investigation of the interaction and interfacing between the various layers, as they play a crucial role in determining the overall performance of the cell. In this context, the present work aims at analyzing the coupling between a spongy transparent electron-transporting layer (ETL) and perovskite in a formulation CsPbI 3 :EuI 2 . The ETL used in this work is a transparent mesoporous TiO 2 layer called "gig-lox" (grazing incidence angle geometry–local oxidation), which has been optimized to boost the interfacing with the perovskite for achieving a highly interconnected blend of materials. The gig-lox TiO 2 ETL shows a high surface wettability with respect to the perovskite solution, especially after pre-annealing at 500 ° C, and this enables the perovskite material to deeply infiltrate throughout it. The surface wettability of the gig-lox TiO 2 has been estimated by contact angle measurements, while the deep infiltration of the perovskite material has been demonstrated through X-ray diffraction and transmission electron microscopy analyses. Thanks to the achieved deep infiltration, the photo-generated charge injection from the perovskite into the mesoporous oxide is enhanced with respect to the use of a planar compact oxide, as shown by the photoluminescence measurements. The mainstay of the approach resides in the ETL that is deposited by a solvent-free sputtering method and is up-scalable for high industrial throughput. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
26739941
Volume :
3
Issue :
3
Database :
Complementary Index
Journal :
Solar
Publication Type :
Academic Journal
Accession number :
172750242
Full Text :
https://doi.org/10.3390/solar3030020