Direct visualization of polaron formation in the thermoelectric SnSe
arXiv:2111.10012 · doi:10.1073/pnas.2113967119
Abstract
SnSe is a layered material that currently holds the record for bulk thermoelectric efficiency. The primary determinant of this high efficiency is thought to be the anomalously low thermal conductivity resulting from strong anharmonic coupling within the phonon system. Here we show that the nature of the carrier system in SnSe is also determined by strong coupling to phonons by directly visualizing polaron formation in the material. We employ ultrafast electron diffraction and diffuse scattering to track the response of phonons in both momentum and time to the photodoping of free carriers across the bandgap, observing the bimodal and anisotropic lattice distortions that drive carrier localization. Relatively large (\SI{18.7}{\angstrom}), quasi-1D polarons are formed on the \SI{300}{\femto\second} timescale with smaller (\SI{4.2}{\angstrom}) 3D polarons taking an order of magnitude longer (\SI{4}{\pico\second}) to form. This difference appears to be a consequence of the profoundly anisotropic electron-phonon coupling in SnSe, with strong Fröhlich coupling only to zone center polar optical phonons. These results demonstrate that carriers in SnSe at optimal doping levels results in a high polaron density and that strong electron-phonon coupling is also critical to the thermoelectric performance of this benchmark material and potentially high-performance thermoelectrics more generally.
11 pages, 5 figures, includes supplemental information
References in corpus (9)
- Significant reduction of lattice thermal conductivity by electron-phonon interaction in silicon with high carrier concentrations: a first-principles study
- Slow cooling of hot polarons in halide perovskite solar cells
- Coherent and incoherent electron-phonon coupling in graphite observed with radio-frequency compressed ultrafast electron diffraction
- Ab initio theory of polarons: formalism and applications
- Visualization of Dynamic Polaronic Strain Fields in Hybrid Lead Halide Perovskites
- Solving the Jitter Problem in Microwave Compressed Ultrafast Electron Diffraction Instruments: Robust Sub-50 fs Cavity-Laser Phase Stabilization
- Multi-phonon diffuse scattering in solids from first-principles: Application to layered crystals and 2D materials
- Efficient first-principles methodology for the calculation of the all-phonon inelastic scattering in solids
- Thermally-Enhanced Fröhlich Coupling in SnSe
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- Symmetry-protected topological polarons