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Julio Zuriel Gonzalez-Vazquez

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Jul 2026

Assessing CH3NH3CaBr3 as a lead-free hybrid perovskite: DFT insights into stability and potential applications.

Since the development of metal halide hybrid perovskite (MHP)-based solar cells, many investigations have aimed to overcome the shortcomings of the most widely used MHP, methylammonium (CH3NH3, MA) lead iodide (CH3NH3PbI3, MAPI), such as its toxicity and low stability. In this respect, many MHPs have been proposed to reduce or replace the Pb content in MAPI. This work studies the vibrational, thermodynamic, electronic, and optical properties of a proposed CH3NH3CaBr3 (MACB) cubic perovskite by using first-principles density functional theory and density functional perturbation theory to evaluate its potential as a solar cell material. The results show that MA lies stably only at certain positions within the perovskite lattice, and the barrier energy for an internal rotation to the next stable position is relatively low. Also, the mechanical properties show fragility in directions perpendicular to the C-N bond of MA. The electronic properties show a large energy gap; that is, the optical properties of MACB appear outside the ideal range for solar cell applications. These results could help understand the stabilization mechanisms of MACB and reveal its potential applications, as a computationally promising material whose optical properties are consistent with UV-protective applications in solar cells, pending experimental validation, as well as for applications as ultraviolet detectors and photonic devices such as perovskite-based light-emitting diodes.

Julio Zuriel Gonzalez-Vazquez, R. Bermeo-Campos, R. Oviedo-Roa et al. · 0 citations

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