1 Department of Applied Science and Humanities, Goel Institute of Technology and Management, Lucknow (UP), India.
2 Islamiya Inter College, Lucknow (UP), India.
International Journal of Science and Research Archive, 2026, 19(02), 923-932
Article DOI: 10.30574/ijsra.2026.19.2.1130
Received on 07 April 2026; revised on 14 May 2026; accepted on 16 May 2026
Using density functional theory (DFT), we examined how pressure alters both structural and mechanical properties of BiFeO₃. Under hydrostatic conditions, the lattice structure of BiFeO₃ is compressed. Also, as the bulk modulus increases, the elastic constants increase rapidly. Considering its optical properties, comparison reveals a shift of the absorption edge toward the red end of the spectrum. In contrast, we observe a trend towards a blue shift in the dielectric peaks. This reflects a narrowing of the band gap along with an increase in the refractive index. By analyzing phonon dispersion, we verify the dynamic stability of the phonons and what can be called phonon hardening, as well as their stability under pressure. These tunable values indicate the possibility of BiFeO₃ for pressure-adaptive optoelectronic and, indeed, multiferroic device applications. Our theoretical results, obtained so far, seem to be in the same range as the experimental results, and the material appears to be the next in line for application in integrated high-performance sensors, photovoltaics, and memory, which has proven to be suitable in environments with changes in environmental conditions.
Density functional theory; Structural Properties; Mechanical Properties; Optical Properties. BiFeO3
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Amit Rai, Purshottam Kumar Srivastava and Mohd. Yakub Beg. Hydrostatic pressure-induced enhancement of BiFeO₃ for high-performance optoelectronics and ferroelectric applications. International Journal of Science and Research Archive, 2026, 19(02), 923-932. Article DOI: https://doi.org/10.30574/ijsra.2026.19.2.1130.






