Julia Stähler

Humboldt-Universität zu Berlin, Berlin, Germany 
 Fritz Haber Institute of the Max Planck Society 
"Julia Stähler"
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Uwe Bovensiepen grad student 2004-2007 FU Berlin
Martin Wolf grad student 2004-2007 FU Berlin
Andrea Cavalleri post-doc 2008-2009 Oxford
Tony F. Heinz research scientist 2011 Columbia (Chemistry Tree)
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Gierster L, Vempati S, Stähler J. (2022) Ultrashort and metastable doping of the ZnO surface by photoexcited defects. Faraday Discussions
Park S, Mutz N, Kovalenko SA, et al. (2021) Type-I Energy Level Alignment at the PTCDA-Monolayer MoS Interface Promotes Resonance Energy Transfer and Luminescence Enhancement. Advanced Science (Weinheim, Baden-Wurttemberg, Germany). 8: 2100215
Vempati S, Bogner L, Richter C, et al. (2020) Photoexcited organic molecules en route to highly efficient autoionization. The Journal of Chemical Physics. 152: 074715
Bertram C, Auburger P, Bockstedte M, et al. (2020) Impact of Electron Solvation on Ice Structures at the Molecular Scale. The Journal of Physical Chemistry Letters. 11: 1310-1316
Foglia L, Vempati S, Tanda Bonkano B, et al. (2019) Revealing the competing contributions of charge carriers, excitons, and defects to the non-equilibrium optical properties of ZnO. Structural Dynamics (Melville, N.Y.). 6: 034501
King SB, Broch K, Demling A, et al. (2019) Multistep and multiscale electron transfer and localization dynamics at a model electrolyte/metal interface. The Journal of Chemical Physics. 150: 041702
Vempati S, Deinert JC, Gierster L, et al. (2018) Uncovering the (un-)occupied electronic structure of a buried hybrid interface. Journal of Physics. Condensed Matter : An Institute of Physics Journal. 31: 094001
Mor S, Herzog M, Noack J, et al. (2018) Inhibition of the photoinduced structural phase transition in the excitonic insulator Ta2NiSe5 Physical Review B. 97: 115154
Mor S, Herzog M, Golež D, et al. (2017) Ultrafast Electronic Band Gap Control in an Excitonic Insulator. Physical Review Letters. 119: 086401
King SB, Wegkamp D, Richter C, et al. (2017) Trapped Electrons at the Amorphous Solid Water/Vacuum Interface as Possible Reactants in a Water Splitting Reaction The Journal of Physical Chemistry C. 121: 7379-7386
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