Research overview
Information about our lab's research projects
Fast Super-resolution microscopy We develop and improve fast super resolution imaging methods to investigate the high dynamics of living cells - with and without fluorescence Project 1: Structured illumination microscopy (SIM) Project 2: Rotating coherent scattering (ROCS) microscopy | |
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Light-sheet microscopy with self-reconstructing beams We shape the phase profile of iilluminating laser beams in fluorescence light-sheet microscopy (LSM) to optimize the propagation through biological material and thereby the 3D image quality. Project 1: Beam shaping with dynamic computer holograms Project 2: Bessel beam LSM with 2-photon excitation or STED | |
Momentum transport through bio-polymer networks We investigate the frequency dependent viscoelastic properties of microtubules coupled by optically trapped beads as nucleation sites. | |
Cytoskelton dynamics inside Bacteria With fast super-resolution microscopy (TIRF-SIM) we investigate the dynamics of MreB filaments inside B.Subtilis. The protein cytoskeleton protein MreB is a key player for the syntheis of the bacterial cell wall. | |
Surface Imaging with optically trapped probes Surface scanning with optically trapped probes in the presence of phase disturbing structures. | |
Plasmonic coupling of optically trapped particles
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Simulations Wave optics. We developed theories and program code to describe light propagation in inhomogeneous media, scattering, optical forces and advanced 3D imaging. Brownian Dynamics. We develop theories and program code to describe particular diffusion and binding in complex environments. | |
Dynamic Particle interactions
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