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Synergistic Lattice Softening and Polaron Engineering in Cu2+-Doped Cs2SnCl6: Decoupling Thermal and Electrical
Dhivya Mahalakshmi Chavali Naresh1, Mohamed Jibri Khaja Peer1, Jayaram Archana2
1Nanotechnology Research Centre (NRC), Faculty of Engineering and Technology, SRM Institute of Science and Technology, Kattankulathur 603203, India.
Abstract:
Understanding the local lattice distortion in response to charge carriers is pivotal for understanding the mechanisms of electron-phonon coupling in halide perovskites. In this work, we present synergistic lattice softening and polaron engineering in Cu2+-doped Cs2SnCl6, revealing mechanisms through which dopant-induced structural perturbations suppress lattice thermal conductivity (κlat) while simultaneously enhancing electrical conductivity (σ). Systematic analysis via temperature-dependent Raman spectroscopy and thermal conductivity studies elucidated the mechanism of phonon scattering. The Cu2+ doping induces chloride vacancies that modulate lattice anharmonicity and acoustic phonon contributions (κa) through tensile-stress-induced reduced bond stiffness. Conversely, the charge transport via the small polaron hopping (SPH) mechanism governs that Cu2+ doping reduces charge carrier activation (Ehop) from 0.57 to 0.15 eV, facilitating superior electrical conductivity. Thus, rational dopant engineering in halide perovskites enhances the charge carrier, which offers a critical strategy for maximizing the thermoelectric figure of merit (zT).
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