Publications Uli Zeitler:
Selected Recent Highlights

Complete Publication List         Highlights 2005-2015        Historic Highlights (before 2006)        [Back to Homepage]
              
Click on the left picture for a summary of the related work.
Click on the PDF-link for a reprint or, respectively, on the arXive-link for a preprint.
Click on the right picture for a direct link to the journal.

   217.. L. C. J. M. Peters, P. C. M. Christianen, H. Engelkamp, G. C. Groenenboom, J. C. Maan, E. Kampert, P. T. Tinnemans, A. E. Rowan, U. Zeitler,
Magnetic anisotropy of individually addressed spin states,
Physical Review Research 3, L042042(2021)        [PDF]       Open Access
HFML Research Highlight: The science behind magnetic materials for technological applications
 
      
   216. Km Rubi, Shengwei Zeng, Femke Bangma, Michel Goiran, A. Ariando, Walter Escoffier, Uli Zeitler,
Electronic subbands in the a-LaAlO3/KTaO3 interface revealed by quantum oscillations in high magnetic fields,
Physical Review Research 3, 033234(2021).       [PDF]       Open Access
HFML Research Highlight: 5d-oxide based two-dimensional electron system in high magnetic fields
 
      
   209. M. Schmitz, T. Ouaj, Z. Winter, K. Rubi, K. Watanabe, T. Taniguchi, U. Zeitler, B. Beschoten and C. Stampfer,
Fractional quantum Hall effect in CVD-grown graphene.
2D Materials 7 041007 (2020) .       [PDF]      Open Access
HFML Research Highlight: Fractional quantum Hall effect in CVD graphene
 
      
   204. Rosa Córdoba, Dominique Mailly, Roman O. Rezaev, Ekaterina I. Smirnova, Oliver G. Schmidt, Vladimir M. Fomin, Uli Zeitler, Isabel Guillamón, Hermann Suderow and José Maréa De Teresa
Three-Dimensional Superconducting Nanohelices Grown by He+-Focused-Ion-Beam Direct Writing,
Nano Letters 19, 8597(2019).       [PDF]
HFML Research Highlight: Threading flux through helixes
 
      
   198. S. Pezzini, S. Wiedmann, A. Mishchenko, M. Holwill, R. Gorbachev, D. Ghazaryan, K.S. Novoselov, and U. Zeitler
Field-induced insulating states in a graphene superlattice,
Phys. Rev. B 99, 045440 (2019).       [PDF]
HFML Research Highlight: Insulating states of replica Dirac fermions in graphene superlattices
 
      
   197. D. Maryenko, A. McCollam, J. Falson, Y. Kozuka, J. Bruin, U. Zeitler, M. Kawasaki,
Composite fermion liquid to Wigner solid transition in the lowest Landau level of zinc oxide,
Nature Communications 8, 4358 (2018).       [PDF]       Open Access
HFML Research Highlight: Electronic phases in high magnetic fields
 
      
   183. D. A. Bandurin, A. V. Tyurnina, G. L. Yu, A. Mishchenko, V. Zolyomi, S. V. Morozov, R. Krishna Kumar, R. V. Gorbachev, Z. R. Kudrynskyi, S. Pezzini, Z. D. Kovalyuk, U. Zeitler, K. S. Novoselov, A. Patane, L. Eaves, I. V. Grigorieva, V. I. Fal'ko, A. K. Geim, Y. Cao,
High electron mobility, quantum Hall effect and anomalous optical response in atomically thin InSe,
Nature Nanotechnology 12, 223-227 (2017).
arXiv:1608.08950 [cond-mat.mes-hall].
HFML Research Highlight: Quantum Hall effect in few-layer InSe.
University of Manchester - News: New ultra-thin semiconductor could extend life of Moore's law.
 
      
   180. T. Khouri, U. Zeitler, C. Reichl, W. Wegscheider, N.E. Hussey, S. Wiedmann, J.C. Maan,
Linear Magnetoresistance in a Quasifree Two-Dimensional Electron Gas in an Ultrahigh Mobility GaAs Quantum Well,
Physical Review Letters 117, 256601 (2016).       [PDF]
HFML Research Highlight: The Origin of Linear Magnetoresistance: Exotic or Classical?
News and Commentary: Simple Model for Linear Magnetoresistance
 
          178. J. R. Wallbank, D. Ghazaryan, A. Misra, Y. Cao, J. S. Tu, B. A. Piot, M. Potemski, S. Pezzini, S. Wiedmann, U. Zeitler, T. L. M. Lane, S. V. Morozov, M. T. Greenaway, L. Eaves, A. K. Geim, V. I. Fal'ko, K. S. Novoselov, A. Mishchenko,
Tuning the valley and chiral quantum state of Dirac electrons in van der Waals heterostructures,
Science 353, 575 (2016).
arXiv:1608.02411 [cond-mat.mes-hall].
HFML Research Highlight: Chirality of graphene electrons manipulated by high magnetic fields
University of Manchester - News: Spinning electrons could lead to new electronics