Halide Perovskites: Advanced Photovoltaic Materials Empowered by a Unique Bonding Mechanism
Authors
Schoen, Carl-Friedrich
Schumacher, Mathias
Robertson, John
Golub, Pavlo
Bousquet, Eric
Gatti, Carlo
Raty, Jean-Yves
Publication Date
2022Journal Title
ADVANCED FUNCTIONAL MATERIALS
ISSN
1616-301X
Publisher
Wiley
Language
en
Type
Article
This Version
AO
VoR
Metadata
Show full item recordCitation
Wuttig, M., Schoen, C., Schumacher, M., Robertson, J., Golub, P., Bousquet, E., Gatti, C., & et al. (2022). Halide Perovskites: Advanced Photovoltaic Materials Empowered by a Unique Bonding Mechanism. ADVANCED FUNCTIONAL MATERIALS https://doi.org/10.1002/adfm.202110166
Description
Funder: Deutsche Forschungsgemeinschaft; Id: http://dx.doi.org/10.13039/501100001659
Abstract
Abstract: Outstanding photovoltaic (PV) materials combine a set of advantageous properties including large optical absorption and high charge carrier mobility, facilitated by small effective masses. Halide perovskites (ABX3, where X = I, Br, or Cl) are among the most promising PV materials. Their optoelectronic properties are governed by the B X bond, which is responsible for the pronounced optical absorption and the small effective masses of the charge carriers. These properties are frequently attributed to the ns2 configuration of the B atom, i.e., Pb 6s2 or Sn 5s2 (“lone‐pair”) states. The analysis of the PV properties in conjunction with a quantum‐chemical bond analysis reveals a different scenario. The B X bond differs significantly from ionic, metallic, or conventional 2c 2e covalent bonds. Instead it is better regarded as metavalent, since it shares about one p‐electron between adjacent atoms. The resulting σ‐bond, formally a 2c 1e bond, is half‐filled, causing pronounced optical absorption. Electron transfer between B and X atoms and lattice distortions open a moderate bandgap resulting in charge carriers with small effective masses. Hence, metavalent bonding explains favorable PV properties of halide perovskites, as summarized in a map for different bond types, which provides a blueprint to design PV materials.
Keywords
effective mass, halide perovskites, metavalent bonding, optical absorption, photovoltaics
Sponsorship
Aachen University (RWTH0508, JARA0183, JARA0198)
Federal Ministry of Education and Research (16ES1133 K)
Walloon Region (1117545, J.0154.21)
Identifiers
adfm202110166
External DOI: https://doi.org/10.1002/adfm.202110166
This record's URL: https://www.repository.cam.ac.uk/handle/1810/329807
Rights
Licence:
http://creativecommons.org/licenses/by-nc/4.0/
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