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Updated: Nov 17, 2025

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3D Orbital Tracking in a Modified Two-photon Microscope: An Application to the Tracking of Intracellular Vesicles
Published on: October 1, 2014
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Tracing orbital images on ultrafast time scales
R Wallauer1, M Raths2,3,4, K Stallberg1
1Fachbereich Physik und Zentrum für Materialwissenschaften, Philipps-Universität Marburg, Renthof 5, 35032 Marburg, Germany.
Summary
Researchers imaged unoccupied molecular orbitals in momentum space using ultrafast laser pulses. This breakthrough allows observing electron dynamics and orbital shapes in real-time, advancing molecular science.
Area of Science:
- Quantum Chemistry
- Molecular Spectroscopy
- Ultrafast Dynamics
Background:
- Frontier orbitals govern molecular properties and reactivity.
- Imaging occupied orbitals in momentum space is possible via photoemission tomography.
- Real-time dynamics of unoccupied orbitals remain experimentally elusive.
Purpose of the Study:
- To develop a method for imaging unoccupied molecular orbitals in momentum space over time.
- To connect excited-state dynamics to real-space excitation pathways.
- To enable observation of ultrafast electron motion.
Main Methods:
- Combined time-resolved photoemission with high laser harmonics.
- Utilized a momentum microscope for tomographic imaging.
- Performed femtosecond pump-probe experiments on transiently excited electrons.
Main Results:
- Successfully measured the full momentum-space distribution of transiently excited electrons.
- Established a tomographic, femtosecond pump-probe technique for unoccupied orbitals.
- Linked excited-state dynamics to real-space excitation pathways.
Conclusions:
- The developed method allows real-time observation of unoccupied molecular orbital dynamics.
- This technique provides insights into ultrafast electron motion and molecular excitation.
- Future applications may include observing electron motion in time and space.

