Tracking the surface atomic motion in a coherent phonon oscillation
arXiv:2205.13212 · doi:10.1103/PhysRevB.106.L201409
Abstract
X-ray photoelectron diffraction is a powerful tool for determining the structure of clean and adsorbate-covered surfaces. Extending the technique into the ultrafast time domain will open the door to studies as diverse as the direct determination of the electron-phonon coupling strength in solids and the mapping of atomic motion in surface chemical reactions. Here we demonstrate time-resolved photoelectron diffraction using ultrashort soft X-ray pulses from the free electron laser FLASH. We collect Se 3d photoelectron diffraction patterns over a wide angular range from optically excited BiSe with a time resolution of 140 fs. Combining these with multiple scattering simulations allows us to track the motion of near-surface atoms within the first 3 ps after triggering a coherent vibration of the A optical phonons. Using a fluence of 4.2 mJ/cm from a 1.55 eV pump laser, we find the resulting coherent vibrational amplitude in the first two interlayer spacings to be on the order of 1 pm.
References in corpus (7)
- Ultrafast carrier and phonon dynamics in Bi2Se3 crystals
- Distinguishing bulk and surface electron-phonon coupling in the topological insulator Bi2Se3 using time-resolved photoemission spectroscopy
- Spatially resolved femtosecond pump-probe study of topological insulator Bi2Se3
- Imaging Molecular Structure through Femtosecond Photoelectron Diffraction on Aligned and Oriented Gas-Phase Molecules
- The monochromator beamline at FLASH: performance, capabilities and upgrade plans
- Direct measurement of electron-phonon coupling with time-resolved ARPES
- Ultrafast electronic line width broadening in the C 1s core level of graphene