Wide‐Gap Perovskites for Indoor Photovoltaics

Author:

Burwell Gregory1ORCID,Zeiske Stefan12ORCID,Caprioglio Pietro3ORCID,Sandberg Oskar J.14ORCID,Kay Austin M.1ORCID,Farrar Michael D.3,Kim Yong Ryun15,Snaith Henry J.3ORCID,Meredith Paul1ORCID,Armin Ardalan1ORCID

Affiliation:

1. Sustainable Advanced Materials (Sêr‐SAM) Centre for Integrative Semiconductor Materials and Department of Physics Swansea University Singleton Park Swansea SA2 8PP UK

2. Department of Chemistry Northwestern University 2145 Sheridan Rd Evanston IL 60208 USA

3. Department of Physics University of Oxford Clarendon Laboratory Parks Road Oxford OX1 3PU UK

4. Physics Faculty of Science and Engineering Åbo Akademi University Turku 20500 Finland

5. Solar Energy Research Institute of Singapore (SERIS) National University of Singapore (NUS) Singapore 117574 Singapore

Abstract

Organic–inorganic halide perovskite semiconductors have revolutionized next‐generation photovoltaics (PV) due to several characteristics such as solution‐processability, gap tunability, and excellent charge generation and transport properties. This has made them very adaptable for various applications in light harvesting and photodetection. One such rapidly growing application is indoor photovoltaics (IPV) which have the potential to power standalone Internet of Things devices. IPV requires wider optimal bandgaps than solar cells (1.8 vs 1.3 eV) due to the differences between the spectra of artificial lights versus solar radiation. For IPV applications, the active layer wide‐gap perovskite must be developed systemically considering all other components of the device, such as interlayers, electrodes, and scaling. This perspective provides an overview of the potential and challenges facing perovskite‐based IPV from a theoretical, material, and experimental perspective. Furthermore, accurate characterization of perovskite IPVs under simulated indoor conditions is discussed and candidate perovskite PV (PPV) systems are presented to provide insight into IPV development. These include IPV‐optimized formamidinium cesium‐based perovskite, wide‐gap p‐i‐n devices, and 2D perovskite devices, tested under spectrophotometrically calibrated LED illumination at various indoor‐relevant illuminances and benchmarked against thermodynamic predictions. Finally, strategies required to create stable, optimized PPV devices for indoor applications are discussed.

Funder

Engineering and Physical Sciences Research Council

UK Research and Innovation

Publisher

Wiley

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