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Substitution of lead with tin suppresses ionic transport in halide perovskite optoelectronics.
Dey, Krishanu; Ghosh, Dibyajyoti; Pilot, Matthew; Pering, Samuel R; Roose, Bart; Deswal, Priyanka; Senanayak, Satyaprasad P; Cameron, Petra J; Islam, M Saiful; Stranks, Samuel D.
Affiliation
  • Dey K; Cavendish Laboratory, University of Cambridge Cambridge UK sds65@cam.ac.uk.
  • Ghosh D; Department of Materials Science and Engineering and Department of Chemistry, Indian Institute of Technology Delhi Hauz Khas India.
  • Pilot M; Department of Chemistry, University of Bath Bath UK chppjc@bath.ac.uk.
  • Pering SR; Department of Materials, Loughborough University Loughborough UK.
  • Roose B; Department of Chemical Engineering and Biotechnology, University of Cambridge Cambridge UK.
  • Deswal P; Department of Physics, Indian Institute of Technology Delhi Hauz Khas India.
  • Senanayak SP; Nanoelectronics and Device Physics Lab,School of Physical Sciences, National Institute of Science Education and Research, HBNI, Jatni India.
  • Cameron PJ; Department of Chemistry, University of Bath Bath UK chppjc@bath.ac.uk.
  • Islam MS; Department of Materials, University of Oxford Oxford UK saiful.islam@materials.ox.ac.uk.
  • Stranks SD; Cavendish Laboratory, University of Cambridge Cambridge UK sds65@cam.ac.uk.
Energy Environ Sci ; 17(2): 760-769, 2024 Jan 23.
Article de En | MEDLINE | ID: mdl-38269299
ABSTRACT
Despite the rapid rise in the performance of a variety of perovskite optoelectronic devices with vertical charge transport, the effects of ion migration remain a common and longstanding Achilles' heel limiting the long-term operational stability of lead halide perovskite devices. However, there is still limited understanding of the impact of tin (Sn) substitution on the ion dynamics of lead (Pb) halide perovskites. Here, we employ scan-rate-dependent current-voltage measurements on Pb and mixed Pb-Sn perovskite solar cells to show that short circuit current losses at lower scan rates, which can be traced to the presence of mobile ions, are present in both kinds of perovskites. To understand the kinetics of ion migration, we carry out scan-rate-dependent hysteresis analyses and temperature-dependent impedance spectroscopy measurements, which demonstrate suppressed ion migration in Pb-Sn devices compared to their Pb-only analogues. By linking these experimental observations to first-principles calculations on mixed Pb-Sn perovskites, we reveal the key role played by Sn vacancies in increasing the iodide ion migration barrier due to local structural distortions. These results highlight the beneficial effect of Sn substitution in mitigating undesirable ion migration in halide perovskites, with potential implications for future device development.

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: Energy Environ Sci Année: 2024 Type de document: Article Pays de publication: Royaume-Uni

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: Energy Environ Sci Année: 2024 Type de document: Article Pays de publication: Royaume-Uni