Breaking 1.7 V Open Circuit Voltage in Large Area Transparent Perovskite Solar Cells Using Interfaces Passivation

Author:

Di Girolamo Diego1,Vidon Guillaume2,Barichello Jessica1,Di Giacomo Francesco1,Jafarzadeh Farshad1,Paci Barbara3,Generosi Amanda3,Kim Minjin2,Castriotta Luigi Angelo1,Frégnaux Mathieu4,Guillemoles Jean‐François2,Brunetti Francesca1,Schulz Philip2,Ory Daniel56,Cacovich Stefania2,Di Carlo Aldo13,Matteocci Fabio1ORCID

Affiliation:

1. CHOSE – Centre for Hybrid and Organic Solar Energy Department of Electronic Engineering University of Rome ‘‘Tor Vergata’’ via del Politecnico 1 Rome 00133 Italy

2. Institut Photovoltaïque d'Ile‐de‐France (IPVF) UMR 9006 CNRS Ecole Polytechnique IP Paris, Chimie Paristech, PSL Palaiseau 91120 France

3. ISM‐CNR, Istituto di Struttura della Materia Consiglio Nazionale delle Ricerche Roma 00133 Italy

4. Institut Lavoisier de Versailles (ILV) Université de Versailles Saint‐Quentin‐en‐Yvelines Université Paris‐Saclay CNRS UMR 8180 45 avenue des Etats‐Unis Versailles CEDEX 78035 France

5. Institut Photovoltaïque d’Île‐de‐France (IPVF) 18 Boulevard Thomas Gobert Palaiseau 91120 France

6. Électricité de France (EDF) R&D 18 Boulevard Thomas Gobert Palaiseau 91120 France

Abstract

AbstractEfficient semi‐transparent solar cells can extend the adoption of photovoltaics beyond standard utility‐scale, commercial, or residential applications. Halide perovskites are particularly suitable in this respect owing to their tunable bandgap. The main drawbacks in the development of transparent perovskite solar cells are the high open‐circuit voltage (Voc) deficit and the difficulties in depositing high‐quality thin films over large area substrates, given the low solubility of bromide and chloride precursors. In this work, passivation strategies are developed for the high bandgap Br perovskite able to reduce charge recombination and consequently improve the Voc. The study demonstrates 1 cm2 perovskite solar cells with Voc up to 1.73 V (1.83 eV Quasi Fermi Level Splitting) and a PCE of 8.1%. The average visible transmittance (AVT) exceeds 70% by means of a bifacial light management and a record light utilization efficiency (LUE) of 5.72 is achieved. Moreover, the potential use of the technology is evaluated toward Internet of Things (IoT) application owing to a bifaciality factor of 87% along with 17% PCE under indoor lighting. Finally, the up‐scaling is demonstrated by fabricating 20 cm2 active area modules with PCE of 7.3% and Voc per cell up to 1.65 V.

Funder

HORIZON EUROPE Framework Programme

Publisher

Wiley

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