Extreme Radiation Resistance of Self‐Powered High‐Performance Cs0.04Rb0.04(FA0.65MA0.35)0.92Pb(I0.85Br0.14Cl0.01)3 Perovskite Photodiodes

Author:

Solovan Mykhailo M.123,Mostovyi Andriy I.12,Aidarkhanov Damir45,Parkhomenko Hryhorii P.1,Akhtanova Gulnur1,Schopp Nora6,Asare Ernest A.1,Nauruzbayev Dosbol1,Kaikanov Marat1,Ng Annie45,Brus Viktor V.1ORCID

Affiliation:

1. Department of Physics School of Sciences and Humanities Nazarbayev University Astana 010000 Republic of Kazakhstan

2. Department of Electronics and Energy Engineering Yuriy Fedkovych Chernivtsi National University Chernivtsi 58012 Ukraine

3. Faculty of Physics Adam Mickiewicz University Poznan Poznan 61‐614 Poland

4. Department of Electrical and Computer Engineering School of Engineering and Digital Sciences Nazarbayev University Astana 010000 Republic of Kazakhstan

5. National Laboratory Astana Nazarbayev University Astana 010000 Republic of Kazakhstan

6. Department of Chemistry and Biochemistry University of California Santa Barbara (UCSB) Santa Barbara CA 93106 USA

Abstract

AbstractThis work reports, for the first time, on radiation resistance of state‐of‐the‐art multicomponent Cs0.04Rb0.04(FA0.65MA0.35)0.92Pb(I0.85Br0.14Cl0.01)3 perovskite photodiodes, tested under high‐intensity pulsed 170 keV proton irradiation with fluence up to 1013 protons cm−2. The studied photodiodes demonstrate record radiation resistance among reported analogous optoelectronic devices. Specifically, it is shown that the proton irradiation with the fluence of 2 × 1012 protons cm−2 even leads to a slight improvement in the photodiode parameters. Nonetheless, a large fluence of 1013 protons cm−2 deteriorates photodiode parameters on average by only 25% with respect to that of the as‐prepared devices. The revealed high‐performance and advanced radiation hardness demonstrate the huge application potential of lightweight and low‐cost solution‐processed perovskite optoelectronic devices in sensing and communication networks operating under harsh space conditions.

Funder

Ministry of Education and Science of the Republic of Kazakhstan

Nazarbayev University

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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