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The lead contamination and long-term stability are the two important problems limiting the commercialization of organic–inorganic lead halide perovskites. In this study, through an innovative multi-scale simulation strategy based on the first-principle calculations coupling with drift-diffusion model and Monte Carlo method, a new discovery is shed on the vacancy-ordered double perovskite Cs2TiI6, a potential nontoxic and stable perovskite material for high-performance solar cell and α-particle detection. The excellent photon absorption character and ultrahigh carrier mobility (μn = 2.26×104 cm2/Vs, μp = 7.38×103 cm2/Vs) of Cs2TiI6 induce ultrahigh power conversion efficiency (PCE) for both single-junction solar cell (22.70%) and monolithic all-perovskite tandem solar cell (26.87%). Moreover, the outstanding device performance can be remained even in high energy charge particle detection (α-particle) with excellent charge collection efficiency (CCE = 99.2%) and mobility-lifetime product (μτh = 1×10–3 cm2/V). Furthermore, to our surprise, the solar cell and α-particle detector based on Cs2TiI6 material are able to withstand ultrahigh fluence proton beam up to 1013 and 1015 p/cm2 respectively, which strongly suggests that semiconductor devices based on Cs2TiI6 material are able to apply in the astrospace. The multi-scale simulation connecting from material to device reveals that Cs2TiI6 perovskite has the great potential for photovoltaic cells, α-particle detection and even their space application.

Publication history
Copyright

Publication history

Received: 09 May 2021
Revised: 26 July 2021
Accepted: 08 August 2021
Published: 04 September 2021
Issue date: March 2022

Copyright

© Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature 2021
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