Halide substitution effects on the photovoltaic properties of Ca3PX3 (X = F, Cl, Br, I) perovskites: advancing solar cell efficiency

Authors

  • P. Dhariwal Materials Science Research Laboratory, Department of Physics, Shri Varshney College, Raja Mahendra Pratap Singh University, Aligarh, 202001 Uttar Pradesh, India https://orcid.org/0009-0005-3665-4342
  • D. Prakash School of Computer Science and Engineering, Faculty of Engineering, Shri Mata Vaishno Devi University, Kakryal, Katra, 182320 J&K, India https://orcid.org/0000-0003-3729-683X
  • K. D. Verma Materials Science Research Laboratory, Department of Physics, Shri Varshney College, Raja Mahendra Pratap Singh University, Aligarh, 202001 Uttar Pradesh, India https://orcid.org/0000-0002-5492-2997
  • A. Kumari Materials Science Research Laboratory, Department of Physics, Shri Varshney College, Raja Mahendra Pratap Singh University, Aligarh, 202001 Uttar Pradesh, India https://orcid.org/0009-0003-0062-1093
  • P. K. Kamlesh Department of Physics, Poornima University, Jaipur, 303905 Rajasthan, India https://orcid.org/0000-0001-7361-3519
  • A. S. Verma Department of Allied Sciences, Graphic Era Deemed to be University, Dehradun, 248002 Uttarakhand, India; University Centre for Research & Development, Department of Physics, Chandigarh University, 140413 Mohali, Punjab, India https://orcid.org/0000-0001-8223-7658

DOI:

https://doi.org/10.5488/cmp.29.23701

Keywords:

substitution effects, optoelectronic applications, SLME, refractive index, dielectric properties

Abstract

Herein, the fundamental physical characteristics like structural, electronic, optical parameters of the Ca3PX3 (X = F, Cl, Br, I) materials have been investigated for their potential optoelectronic applications, particularly for solar cells and related devices. To the crystallographic investigations, Ca3PI3 has the most stable configuration among all investigated materials. From the band structure analyses of these materials indicate that all materials have a direct bandgap in the range of 2.0 eV to 3.788 eV, which makes them ideal for light absorption. For the photovoltaic applications, we have analysed first-principles spectroscopic screening limited maximum efficiency (SLME) which confirms that the Ca3PI3 material exhibits the highest solar cell efficiency 29.6% and Ca3PF3 and shows lower efficiency for solar cell suitability 0.6%. Thus, these results demonstrate the real potential and abilities of halide substitution to tune the materials for particular optoelectronic devices.

References

Mubarak A. A., Mousa A. A., Comput. Mater. Sci., 2012, 59, 6–13.

Rehman J. U., Rehman M. A., Usman M., Tahir M. B., Hussain A., Zulfiqar M., Alzaid M., Ali A. M., Shahzad K., Emergent Mater., 2023, 6, 699–709.

Rani U., Kamlesh P. K., Joshi T. K., Singh R., Sharma S., Gupta R., Kumar T., Verma A. S., Comput. Condens. Matter, 2023, 36, e00835.

Mouna S. C., Radjai M., Bouhemadou A., Houatis D., Allali D., Essaoud S. S., Bin-Omran S., Phys. Scr., 2023, 98, 065949.

Hamideddine I., Zitouni H., Tahiri N., El Bounagui O., Ez-Zahraouy H., Appl. Phys. A, 2021, 127, 443.

Rani U., Kamlesh P. K., Shukla A., Verma A. S., J. Solid State Chem., 2021, 300, 122246.

Rahman M. F., Rahman M. A., Islam M. R., Ghosh A., Shanto M. A. B., Chowdhury M., Islam M. A. I., Rahman M. H., Hossain M. K., Islam M. A., AIP Adv., 2023, 13, 085329.

Rahman M. A., Rahman M. F., Marasamy L., Harun-Or-Rashid M., Ghosh A., Chaudhry A. R., Irfan A., Energy Fuels, 2024, 38, 8199–8217.

Belhamra S., Masrour R., Jabar A., Hlil E. K., Polyhedron, 2021, 193, 114891.

Kaltzoglou A., Elsenety M. M., Koutselas I., Kontos A. G., Papadopoulos K., Psycharis V., Raptopoulou C. P., Perganti D., Stergiopoulos T., Falaras P., Polyhedron, 2018, 140, 67–73.

Jiang Q., Zhao Y., Zhang X., Yang X., Chen Y., Chu Z., Ye Q., Li X., Yin Z., You J., Nat. Photonics, 2019, 13, 460–466.

Shi Z., Guo J., Chen Y., Li Q., Pan Y., Zhang H., Xia Y., Huang W., Adv. Mater., 2017, 29, 1605005.

Giustino F., Snaith H. J., ACS Energy Lett., 2016, 1, 1233–1240.

Mahmud S., Hossain M. M., Uddin M., Ali M. A., J. Phys. Chem. Solids, 2025, 196, 112298.

Malan C., Mishra K. K., Sharma R., Optik, 2025, 327, 172310.

Apurba I. K. G. G., Islam M. R., Rahman M. S., Rahman M. F., Park J., Heliyon, 2024, 10, e29144.

Shimul A. I., Haque M. M., Ghosh A., Awwad N. S., Ibrahium H. A., Opt. Commun., 2025, 583, 131807.

Ghosh A., Rahman M. F., Kuddus A., Mohammed M. K. A., Islam M. R., Bhattarai S., Chaudhry A. R., Irfan A., J. Alloys Compd., 2024, 986, 174097.

Islam M. R., Zahid A., Rahman M. A., Rahman M. F., Islam M. A., Hossain M. K., Ali M. A., Iqbal M. A., Bakhsh F. I., Ahmad S., J. Phys. Chem. Solids, 2024, 184, 111722.

Feng H.-J., Zhang Q., Appl. Phys. Lett., 2021, 118, 111902.

Brogan M. A., Hughes R. W., Smith R. I., Gregory D. H., J. Solid State Chem., 2012, 185, 213–218.

Rahman Md. F., Islam Md. A. I., Islam Md. R., Ali Md. H., Barman P., Rahman Md. A., Harun-Or-Rashid Md., Hasan M., Hossain M. K., Nano Sel., 2023, 4, 632–645.

Blaha P., Schwarz K., Tran F., Laskowski R., Madsen G. K. H., Marks L. D., J. Chem. Phys., 2020, 152, 074101.

Perdew J. P., Burke K., Ernzerhof M., Phys. Rev. Lett., 1996, 77, 3865–3868.

Tran F., Blaha P., Phys. Rev. Lett., 2009, 102, 226401.

Yu L., Zunger A., Phys. Rev. Lett., 2012, 108, 068701.

Birch F., Phys. Rev., 1947, 71, 809–824.

Murnaghan F. D., Proc. Natl. Acad. Sci. U.S.A., 1944, 30, 244–247.

Srivastava S., Rani U., Rani M., Toual Y., Dubey A., Pandit N., Verma A. S., Nehra S., Kamlesh P. K., Next Mater., 2025, 8, 100724.

Meena A., Bairwa J. K., Kumari S., Rani U., Kamlesh P. K., Singh A. P., Verma A. S., Phys. Chem. Solid State, 2025, 26, 10–22.

Hailouf H. E., Obodo K. O., Aourag H., Rani U., Kamlesh P. K., Reggab K., Verma M. L., Goumri-Said S., Mater. Sci. Semicond. Process., 2025, 186, 109019.

Kamlesh P. K., Advancements in Half-Heuslers: A Key to Clean Energy, Scholarly Publication, 2024.

Bercx M., Saniz R., Partoens B., Lamoen D., In: Many-body Approaches at Different Scales: A Tribute to Norman H. March on the Occasion of his 90th Birthday, Springer International Publishing, Cham, 2018, 177–184.

Li Z., Wei B., Nano-Micro Lett., 2025, 17, 330.

Published

2026-06-29

How to Cite

[1]
P. Dhariwal, D. Prakash, K. D. Verma, A. Kumari, P. K. Kamlesh, and A. S. Verma, “Halide substitution effects on the photovoltaic properties of Ca3PX3 (X = F, Cl, Br, I) perovskites: advancing solar cell efficiency”, Condens. Matter Phys., vol. 29, no. 2, p. 23701, Jun. 2026, doi: 10.5488/cmp.29.23701.

Most read articles by the same author(s)

Similar Articles

31-40 of 112

You may also start an advanced similarity search for this article.