Weitz, Thomas Prof. Dr.
Professor for Solid-State Physics
- 1999 - 2004: Diploma studies of physics, TU Kaiserslautern and University of Heidelberg
- 2024-2008: Doctoral thesis in physics, MPI for Solid State Research with Prof. K. Kern
- 2008 - 2009: Post Doc MPI for Solid State Research
- 2009 - 2010: Post Doc, Harvard University, Prof. A. Yacoby
- 2010 - 2011: Post Doc, MPI for solid state research, Prof. K. von Klitzing, Dr. J. Smet
- 2011 - 2015: Research laboratory leader, BASF SE, Ludwigshafen am Rhein
- 2015 - 2020: Tenure-track professor, LMU Munich, „Physics of Nanosystems“
- 2020 - now : Full professor, Georg-August-University Göttingen
Major Research Interests
- Structure-property relation of organic semiconductors
- Quantum phenomena in electronic systems
- Non-equilibrium phenomena in electronic materials
- Van der Waals quantum matter
- Near-field microscopy and spectroscopy
Homepage Department/Research Group
weitzlab.uni-goettingen.de
Selected Recent Publications
- F. Winterer, F. R. Geisenhof, N. Fernandez, A. M. Seiler, F. Zhang and R. T. Weitz (2024) Ferroelectric and anomalous quantum Hall states in intrinsic rhombohedral trilayer graphene, Nature Physics 20, 422–427 article online
- T. Domröse, N. Fernandez, C. Eckel, K. Rossnagel, R. T. Weitz, and C. Ropers (2024) Nanoscale Operando Imaging of Electrically Driven Charge-Density Wave Phase Transitions, Nano Lett. 24, 40, 12476–12485 article online
- A. M. Seiler, F. R. Geisenhof, F. Winterer, K. Watanabe, T. Taniguchi, T. Xu, F. Zhang and R. T. Weitz (2022) Quantum cascade of correlated phases in trigonally warped bilayer graphene, Nature 608, 298–302 article online
- S. Wakolbinger, F. R. Geisenhof, F. Winterer, S. Palmer, J. Crimmann, K. Watanabe, T. Taniguchi, F. Trixler, R. T. Weitz (2020) Locally-triggered hydrophobic collapse induces global interface self-cleaning in van-der-Waals heterostructures at room-temperature, 2D Mater. 7, 035002 article online
- J. Lenz, F. del Giudice, F.R. Geisenhof, F. Winterer, R. T. Weitz (2019) Vertical, electrolyte-gated organic transistors: continuous operation in the MA/cm2 regime and use as low-power artificial synapses, Nat. Nanotechnol. 14, 579–585 article online