The use of solution processes to fabricate Perovskite Solar Cells (PSCs) represents a winning strategy to reduce capital expenditure, increase the throughput and allow for process flexibility needed to adapt PVs to new applications. However, the typical fabrication process for PSC development to date is performed in inert atmosphere (nitrogen), usually in a Glovebox, hampering the industrial scale up. In this work, we demonstrate, for the first time, the use of Double Cation Perovskite (forsaking the unstable MA cation) processed in ambient air by employing potassium doped graphene oxide (GO-K) as interlayer, between the mesoporous TiO2 and the perovskite layer and by using infrared annealing (IRA). We upscaled the device active area from 0.09cm2 to 16cm2 by blade-coating the perovskite layer, exhibiting a PCE of 18.3% and 16.10% for 0.1 and 16cm2 active area devices, respectively. We demonstrated how efficiency and stability of MA-free based perovskite deposition in air have been improved by employing GO-K and IRA.

Air-Processed Infrared-Annealed Printed Methylammonium-Free Perovskite Solar Cells and Modules Incorporating Potassium-Doped Graphene Oxide as an Interlayer

Paolo Mariani;Barbara Paci;Amanda Generosi;Aldo Di Carlo
2021

Abstract

The use of solution processes to fabricate Perovskite Solar Cells (PSCs) represents a winning strategy to reduce capital expenditure, increase the throughput and allow for process flexibility needed to adapt PVs to new applications. However, the typical fabrication process for PSC development to date is performed in inert atmosphere (nitrogen), usually in a Glovebox, hampering the industrial scale up. In this work, we demonstrate, for the first time, the use of Double Cation Perovskite (forsaking the unstable MA cation) processed in ambient air by employing potassium doped graphene oxide (GO-K) as interlayer, between the mesoporous TiO2 and the perovskite layer and by using infrared annealing (IRA). We upscaled the device active area from 0.09cm2 to 16cm2 by blade-coating the perovskite layer, exhibiting a PCE of 18.3% and 16.10% for 0.1 and 16cm2 active area devices, respectively. We demonstrated how efficiency and stability of MA-free based perovskite deposition in air have been improved by employing GO-K and IRA.
2021
Istituto di Struttura della Materia - ISM - Sede Roma Tor Vergata
Inglese
13
10
11741
11754
14
https://pubs.acs.org/doi/10.1021/acsami.0c18920
Esperti anonimi
perovskite solar modules
upscaling
blade coating
uniformity
air process perovskite
2D materi
Internazionale
Elettronico
21
info:eu-repo/semantics/article
262
Angelo Castriotta, Luigi; Matteocci, Fabio; Vesce, Luigi; Cinà, Lucio; Agresti, Antonio; Pescetelli, Sara; Ronconi, Alessandro; Löffler, Markus; M Sty...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
restricted
   MAking pErovskiteS TRuly explOitable
   MAESTRO
   H2020
   764787

   Efficient Structures and Processes for Reliable Perovskite Solar Modules
   ESPResSo
   H2020
   764047

   Graphene Flagship Core Project 3
   GrapheneCore3
   H2020
   881603
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/424700
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