Designing an Efficient Lead-Free Perovskite Solar Cell through a Computational Method

Author:

Bhattarai Sagar1ORCID,Kalita P. K.2ORCID,Hossain Ismail3ORCID,Alsubaie Abdullah Saad4ORCID,Mahmoud Khaled Hussein4,Ansari Mohd Zahid5ORCID,Janicek Petr6ORCID

Affiliation:

1. Department of Physics, Arunachal University of Studies, Namsai 792103, Arunachal Pradesh, India

2. Department of Physics, Rajiv Gandhi University, Papum Pare 791112, Arunachal Pradesh, India

3. School of Natural Sciences and Mathematics, Ural Federal University, Yekaterinburg 620000, Russia

4. Department of Physics, College of Khurma University College, Taif University, P.O. Box 11099, Taif 21944, Saudi Arabia

5. School of Materials Science and Engineering, Yeungnam University, 280 Daehak-ro, Gyeongsan 38541, Gyeongbuk, Republic of Korea

6. Institute of Applied Physics and Mathematics, Faculty of Chemical Technology, University of Pardubice, Studentska 95, 532 10 Pardubice, Czech Republic

Abstract

Organometallic halide perovskite (PVK)-based solar cells (PSC) have gained significant popularity owing to their efficiency, adaptability, and versatility. However, the presence of lead in conventional PVK poses environmental risks and hinders effective commercialization. Although lead-free PVK solar cells have been developed, their conversion efficiency is limited due to intrinsic losses. To address this challenge, we present a simulation study focusing on methylammonium tin bromide (MASnBr3) as an alternative material. In our investigation, the MASnBr3 layers are strategically placed between a copper iodide (CuI)-based hole transporting material (HTM) and a zinc oxide (ZnO)-based electron transporting material (ETM). We optimize the active layer thickness, operating temperature, defect density analysis, and series resistances to assess device performance. Furthermore, we employ contour mapping, considering both thickness and defect density, for a detailed investigation. Our primary objective is to achieve unprecedented efficiency in lead-free MASnBr3-based PSCs. Remarkably, our study achieves the highest JSC (short-circuit current density) of 34.09 mA/cm2, VOC (open-circuit voltage) of 1.15 V, FF (fill factor) of 82.06%, and optimized conversion efficiency of 32.19%. These advancements in conversion efficiency pave the way for the development of lead-free PVK solar cells in the desired direction.

Funder

Deanship of Scientific Research, Taif University

Publisher

MDPI AG

Subject

Inorganic Chemistry,Condensed Matter Physics,General Materials Science,General Chemical Engineering

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