Highly Efficient Flexible Perovskite Solar Cells on Polyethylene Terephthalate Films via Dual Halide and Low‐Dimensional Interface Engineering for Indoor Photovoltaics

Author:

Skafi Zeynab12ORCID,Xu Jie1ORCID,Mottaghitalab Vahid3ORCID,Mivehi Leila2ORCID,Taheri Babak4ORCID,Jafarzadeh Farshad1ORCID,Podapangi Suresh Kumar1ORCID,Altamura Davide5ORCID,Guascito Maria Rachele6ORCID,Barba Luisa7ORCID,Giannini Cinzia5ORCID,Rizzo Aurora8ORCID,De Rossi Francesca1ORCID,Javanbakht Lomeri Hamed1ORCID,Sorbello Luca4ORCID,Matteocci Fabio1ORCID,Brunetti Francesca1ORCID,Brown Thomas M.1ORCID

Affiliation:

1. CHOSE (Centre for Hybrid and Organic Solar Energy) Department of Electronic Engineering University of Rome Tor Vergata Via del Politecnico 1 00133 Rome Italy

2. Department of Textile Engineering Faculty of Engineering University of Guilan Persian Gulf Highway Rasht 41996-13776 Iran

3. Department of Chemical Engineering Faculty of Engineering University of Guilan Persian Gulf Highway Rasht 41996-13776 Iran

4. GreatCell Solar Italia Viale Castro Pretorio 122 00185 Rome Italy

5. Department of Chemical Science and Material Technology (DSCTM) Institute of Crystallography (IC-CNR) Via Amendola 122/0 70126 Bari Italy

6. Department of Biological and Environmental Sciences and Technologies University of Salento Via per Monteroni 73100 Lecce Italy

7. Department of Chemical Science and Material Technology (DSCTM) Institute of Crystallography (IC-CNR) Strada Statale 14 km 163,5 Basovizza 34149 Trieste Italy

8. Institute of Nanotechnology (CNR NANOTEC) Via Monteroni 73100 Lecce Italy

Abstract

Flexible perovskite solar cells are lightweight, bendable, and applicable to curved surfaces. Polyethylene terephthalate (PET) has become the substrate of choice compared to other plastic substrates like polyethylene naphthalate. PET is not only stable but also much cheaper to manufacture, an important factor for photovoltaics (PV). Herein, highly efficient devices on PET are demonstrated using a dual low‐temperature (≤100 °C) approach, first by anion mixing (replacing I with Br) of the lead‐containing perovskite composition, increasing bandgap (42% improvement), and then by interfacial engineering with tetrabutylammonium bromide (TBAB) (a further 26% improvement), reaching efficiencies of 28.9% at 200 lx and a record 32.5% at 1000 lx. The TBA+ cation intercalates into the structure, substituting formamidinium cations at the perovskite/TBAB interface, inducing the formation of large‐sized, lower dimensional structures over the 3D perovskite matrix. The resulting PV cell has 1.4 times higher carrier lifetime, one order of magnitude lower leakage currents, and 3 times lower defect densities, suppressing recombination. Importantly, stability (ISOS‐D1 protocol) improves by more than double with treatment. Highly efficient and stable cells on PET films enable seamless integration with wearable, portable, smart building, and Internet of Things electronic devices, expanding the reach of indoor applications.

Funder

Ministero dell'Università e della Ricerca

Ministry of Science Research and Technology

Ministero degli Affari Esteri e della Cooperazione Internazionale

Chinese Government Scholarship

Regione Lazio

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Energy Engineering and Power Technology,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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