Frontier orbitals determine fundamental molecular properties such as chemical reactivities. Although electron distributions of occupied orbitals can be imaged in momentum space by photoemission tomography, it has so far been impossible to follow the momentum-space dynamics of a molecular orbital in time, for example, through an excitation or a chemical reaction. Here, we combined time-resolved photoemission using high laser harmonics and a momentum microscope to establish a tomographic, femtosecond pump-probe experiment of unoccupied molecular orbitals. We measured the full momentum-space distribution of transiently excited electrons, connecting their excited-state dynamics to real-space excitation pathways. Because in molecules this distri...
The many-body quantum nature of molecules determines their static and dynamic properties, but remain...
Time-resolved photoemission with ultrafast pump and probe pulses is an emerging technique with wide ...
Recent advances in ultrafast electron and X-ray diffraction have pushed imaging of structural dynami...
Frontier orbitals determine fundamental molecular properties such as chemical reactivities. Although...
We use time-resolved momentum microscopy at a free-electron laser (FEL) and extend orbital tomograph...
We theoretically study how time- and angle-resolved photoemission spectroscopy can be applied for im...
Electron motion on the (sub-)femtosecond time scale constitutes the fastest response in many natural...
Single-electron wavefunctions, or orbitals, are the mathematical constructs used to describe the mul...
Due to the important roles played by the electrons in various kinds of reactions, direct imaging ele...
As one of the fundamental concepts of quantum mechanics, electrons in atoms and molecules are assign...
Chemical reactions are manifestations of the dynamics of molecular valence electrons and their coupl...
Nonadiabatic electronic dynamics contribute to the diversity of chemical reactions. We investigate n...
We investigate theoretically the direct imaging of coherent electronic motion in atoms and molecules...
Recent advances in light sources will allow probing of the fastest time scales relevant to chemistry...
The basis for a quantum-mechanical description of matter is electron wave functions. For atoms and m...
The many-body quantum nature of molecules determines their static and dynamic properties, but remain...
Time-resolved photoemission with ultrafast pump and probe pulses is an emerging technique with wide ...
Recent advances in ultrafast electron and X-ray diffraction have pushed imaging of structural dynami...
Frontier orbitals determine fundamental molecular properties such as chemical reactivities. Although...
We use time-resolved momentum microscopy at a free-electron laser (FEL) and extend orbital tomograph...
We theoretically study how time- and angle-resolved photoemission spectroscopy can be applied for im...
Electron motion on the (sub-)femtosecond time scale constitutes the fastest response in many natural...
Single-electron wavefunctions, or orbitals, are the mathematical constructs used to describe the mul...
Due to the important roles played by the electrons in various kinds of reactions, direct imaging ele...
As one of the fundamental concepts of quantum mechanics, electrons in atoms and molecules are assign...
Chemical reactions are manifestations of the dynamics of molecular valence electrons and their coupl...
Nonadiabatic electronic dynamics contribute to the diversity of chemical reactions. We investigate n...
We investigate theoretically the direct imaging of coherent electronic motion in atoms and molecules...
Recent advances in light sources will allow probing of the fastest time scales relevant to chemistry...
The basis for a quantum-mechanical description of matter is electron wave functions. For atoms and m...
The many-body quantum nature of molecules determines their static and dynamic properties, but remain...
Time-resolved photoemission with ultrafast pump and probe pulses is an emerging technique with wide ...
Recent advances in ultrafast electron and X-ray diffraction have pushed imaging of structural dynami...