4.5 Article

Time- and momentum-resolved photoemission studies using time-of-flight momentum microscopy at a free-electron laser

Journal

REVIEW OF SCIENTIFIC INSTRUMENTS
Volume 91, Issue 1, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.5118777

Keywords

-

Funding

  1. DFG
  2. TRR 227 Ultrafast Spin Dynamics [A09, B07]
  3. BMBF [05K16UM1, 05K13GU3, 05K16PGB]
  4. European Research Council (ERC) under the European Union [ERC-2015-CoG-682843]
  5. Max Planck Society
  6. excellence cluster The Hamburg Centre for Ultrafast Imaging Structure, Dynamics and Control of Matter at the Atomic Scale of the Deutsche Forschungsgemeinschaft (DFG) [EXC 1074]
  7. DFG in the Emmy Noether program [RE 3977/1]
  8. Danish Council for Independent Research, Natural Sciences under the Sapere Aude program [DFF-4002-00029, DFF-6108-00409]
  9. VILLUM FONDEN via the Centre of Excellence for Dirac Materials [11744]
  10. Aarhus University Research Foundation
  11. VILLUM FONDEN via the Young Investigator Program [15375]
  12. [RE1469/13-1]
  13. [SFB/TRR 173 Spin+X]
  14. [TRR 227]

Ask authors/readers for more resources

Time-resolved photoemission with ultrafast pump and probe pulses is an emerging technique with wide application potential. Real-time recording of nonequilibrium electronic processes, transient states in chemical reactions, or the interplay of electronic and structural dynamics offers fascinating opportunities for future research. Combining valence-band and core-level spectroscopy with photoelectron diffraction for electronic, chemical, and structural analyses requires few 10 fs soft X-ray pulses with some 10 meV spectral resolution, which are currently available at high repetition rate free-electron lasers. We have constructed and optimized a versatile setup commissioned at FLASH/PG2 that combines free-electron laser capabilities together with a multidimensional recording scheme for photoemission studies. We use a full-field imaging momentum microscope with time-of-flight energy recording as the detector for mapping of 3D band structures in (k(x), k(y), E) parameter space with unprecedented efficiency. Our instrument can image full surface Brillouin zones with up to 7 angstrom(-1) diameter in a binding-energy range of several eV, resolving about 2.5 x 10(5) data voxels simultaneously. Using the ultrafast excited state dynamics in the van der Waals semiconductor WSe2 measured at photon energies of 36.5 eV and 109.5 eV, we demonstrate an experimental energy resolution of 130 meV, a momentum resolution of 0.06 angstrom(-1), and a system response function of 150 fs.

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