Rationalizing Performance Losses of Wide Bandgap Perovskite Solar Cells Evident in Data from the Perovskite Database

Author:

Suchan Klara1ORCID,Jacobsson T. Jesper23ORCID,Rehermann Carolin2ORCID,Unger Eva L.12ORCID,Kirchartz Thomas45ORCID,Wolff Christian M.6ORCID

Affiliation:

1. Division of Chemical Physics and NanoLund Lund University Box 124 22100 Lund Sweden

2. Helmholtz‐Zentrum Berlin für Materialien und Energie GmbH HySPRINT Innovation Lab: Hybrid Materials Formation and Scaling Kekuléstraße 5 12489 Berlin Germany

3. Institute of Photoelectronic Thin Film Devices and Technology Key Laboratory of Photoelectronic Thin Film Devices and Technology of Tianjin College of Electronic Information and Optical Engineering Nankai University Nankai Tianjin 300350 China

4. IEK5‐Photovoltaics Forschungszentrum Jülich 52425 Jülich Germany

5. Faculty of Engineering and CENIDE University of Duisburg‐Essen Carl‐Benz‐Straße 199 47057 Duisburg Germany

6. STI IEM PV‐LAB Ecole Polytechnique Fédérale de Lausanne (EPFL) Rue de la Maladière 71b Neuchâtel 2000 Switzerland

Abstract

AbstractMetal halide perovskites (MHPs) have become a widely studied class of semiconductors for various optoelectronic devices. The possibility to tune their bandgap (Eg) over a broad spectral range from 1.2 eV to 3 eV by compositional engineering makes them particularly attractive for light emitting devices and multi‐junction solar cells. In this metadata study, data from Peer‐reviewed publications available in the Perovskite Database (www.perovskitedatabase.com) is used to evaluate the current state of Eg tuning in wide Eg MHP semiconductors. Recent literature on wide Eg MHP semiconductors is examined and the data is extracted and uploaded onto the Perovskite Database. Beyond describing recent highlights and scientific breakthroughs, general trends are drawn from 45,000 individual experimental datasets of MHP solar cell devices. The historical evolution of MHP solar cells is recapitulated, and general conclusions are drawn about the current limits of device performance. Three dominant causes are identified and discussed for the degradation of performance relative to the Shockley‐Queisser (SQ) model's theoretical limit for single‐junction solar cells: 1) energetically mismatched selective transport materials for wide Eg MHPs, 2) lower optoelectronic quality of wide Eg MHP absorbers, and 3) dynamically evolving compositional heterogeneity due to light‐induced phase segregation phenomena.

Funder

Helmholtz Association

Vetenskapsrådet

H2020 Marie Skłodowska-Curie Actions

Bundesministerium für Bildung und Forschung

Horizon 2020

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Bundesamt für Energie

Key Technologies Research and Development Program

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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