Revealing the quasiparticle electronic and excitonic nature in cubic, tetragonal, and hexagonal phases of FAPbI3

Author:

Muhammad Zeeshan12ORCID,Liu Peitao34ORCID,Ahmad Rashid15,Jalali-Asadabadi Saeid6ORCID,Franchini Cesare37ORCID,Ahmad Iftikhar18ORCID

Affiliation:

1. Center for Computational Material Science, University of Malakand, Chakdara, Pakistan

2. Department of Physics, University of Malakand, Chakdara, Pakistan

3. University of Vienna, Faculty of Physics and Center for Computational Materials Science, Sensengasse 8, A-1090 Vienna, Austria

4. Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, People’s Republic of China

5. University of Malakand, Chakdara, Pakistan

6. Department of Physics, Faculty of Physics, University of Isfahan (UI), Hezar Jerib Avenue, Isfahan 81746-73441, Iran

7. Dipartimento di Fisica e Astronomia, Università di Bologna, 40127 Bologna, Italy

8. Gomal University, Dera Ismail Khan, Pakistan

Abstract

The development of three-dimensional (3D) hybrid organic–inorganic perovskites has sparked much interest because of their rich light-harvesting capabilities in solar cells. However, the understanding of the electronic and optical properties, particularly the excitonic shifts upon structural phase transition with temperature in these materials, is not fully clear. Here, we report the accurate description of electronic and optical properties of mostly studied FAPbI3 across the cubic–tetragonal–hexagonal phases, using the relativistic GW method and Bethe–Salpeter Equation (BSE), including the spin–orbit coupling effects. Our GW calculations reveal that the bandgap values vary from 1.47 to 3.54 eV from the room temperature cubic phase to the low temperature hexagonal phase. Our optical analysis shows that excitonic peaks are blue-shifted, and exciton binding energies estimated by the model BSE approach increase from 74 to 567 meV going from the cubic to hexagonal phases. Our results may have important impacts on the practical uptake of hybrid perovskite based solar cells under different climatic conditions.

Funder

Higher Education Commission, Pakistan

Austrian Science Fund

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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