Md.Hasan Mia, Mohammad Yasin Hayat Khan, Md. Rasheduzzaman, Md.Zahid Hasan
Lead-free halide perovskites are emerging as sustainable alternatives to toxic Pb-based materials for energy conversion technologies. In this study, a comprehensive first-principles investigation combining density functional theory (DFT) and Boltzmann transport theory (BoltzTraP2) is employed to explore the structural, electronic, optical, and thermoelectric properties of novel Cu-based perovskites CuMCl 3 (M = Ge, Sn). Both compounds crystallise in a stable cubic phase (Pm-3 m) with negative formation energies (−2.96 and − 2.87 eV/atom) and exhibit ductile mechanical behaviour. Electronic calculations reveal direct band gaps of 0.70 eV (CuGeCl 3 ) and 0.91 eV (CuSnCl 3 ), confirming their suitability for optoelectronic applications. CuGeCl 3 exhibits a stronger optical response with a higher dielectric constant ( ( ) = 5.12) and absorption, whereas CuSnCl 3 displays lower reflectivity and a higher exciton binding energy (0.099 eV), making it suitable for LED and coating applications. Thermoelectric analysis identifies both materials as n -type semiconductors, with Seebeck coefficients around − 225 μV/K and maximum ZT values of 2.50 (CuGeCl 3 ) and 2.99 (CuSnCl 3 ) at 900 K, surpassing conventional thermoelectric benchmarks. These findings highlight CuGeCl 3 as a promising optoelectronic absorber and CuSnCl 3 as an efficient high-temperature thermoelectric material, offering multifunctional potential for next-generation energy and photonic devices.