Physical properties and power conversion efficiency of SrZrX3 (X=S and Se) chalcogenide perovskite solar cell

Author:

Pandit Naincy1ORCID,Singh Rashmi2,Kumar Anand3,Joshi Tarun Kumar4,Shukla Akash5,Rani Upasana6,Kamlesh Peeyush Kumar7ORCID,Kumar Tanuj8,Priyanka 9,Verma Ajay Singh15ORCID

Affiliation:

1. Department of Natural and Applied Sciences, Glocal University, Saharanpur 247232, Uttar Pradesh, India

2. Department of Physics, Institute of Applied Sciences & Humanities, GLA University, Mathura 281406, Uttar Pradesh, India

3. Department of Physics, Government College for Women, Badhra, Charkhi Dadri 127308, Haryana, India

4. Department of Physics, Swami Vivekanand Government P.G. College, Neemuch 458441, Madhya Pradesh, India

5. School of Life and Basic Sciences, Jaipur National University, Jaipur 302017, Rajasthan, India

6. Division of Research & Innovation, School of Applied and Life Sciences, Uttaranchal University, Dehradun 248007, Uttarakhand, India

7. School of Basic and Applied Sciences, Nirwan University, Jaipur 303305, Rajasthan, India

8. Department of Nanoscience and Materials, Central University of Jammu, Jammu 181143, Jammu & Kashmir, India

9. Department of Physics, S.V. College, Raja Mahendra Pratap Singh State University, Aligarh 202140, Uttar Pradesh, India

Abstract

The search for efficient substances in energy conversion devices, which are low-cost, highly stable, and not hazardous to humanity has intensified among material scientists. Here, we have investigated the chalcogenide-based metal (Sr — strontium) perovskites in the context of developing materials. We have identified the electrical and optical features of these materials using the modified Becke–Johnson potential, revealing information about their nature. With computed values of 2.009[Formula: see text]eV for SrZrS3 and 1.096[Formula: see text]eV for SrZrSe3, respectively, they have shown to be direct bandgap semiconductors. We have also found that both materials exhibit transparency to the striking photon at low energy and demonstrate absorption and optical conduction in the UV region. These materials will be useful in thermoelectric devices because the transport property calculation shows that their figure of merit is unity at both low and high temperatures. In regard to applications, we determined the spectroscopic limited maximum efficiency (SLME) of SrZrS3 (SrZrSe3) and discovered that the efficiency increases from 6.3% to 22.3% (7.9% to 32%) when the film thickness is increased from 100[Formula: see text]nm to 1[Formula: see text][Formula: see text]m at 300[Formula: see text]K, after that it stabilizes. This research shows that these materials ought to be utilized as an alert substance in the design of energy conversion products, and the proposed results are supported by experimental and other theoretical data. We suggest that these substances are strong contenders for use in power conversion equipment depending upon their optical and transport characteristics.

Publisher

World Scientific Pub Co Pte Ltd

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