Most important fields of work
Spin phyics in semiconductors
- Persistent spin textures and currents in wurtzite nanowire-based quantum structures
Michael Kammkermeier, Adrian Seith, Paul Wenk, and John Schliemann
Phys. Rev. B 101, 195418 (2020). - Ultralong spin lifetimes in one-dimensional semiconductor nanowires
Florian Dirnberger, Michael Kammermeier, Jan König, Moritz Forsch, Paulo E. Faria Junior, Tiago Campos, Jaroslav Fabian, John Schliemann, Christian Schüller, Tobias Korn, Paul Wenk, and Dominique Bougeard
Appl. Phys. Lett. 114, 202101 (2019). - Spin-orbit effects on the spin and pseudospin polarization in ac-driven silicene
Alexander Lopez, Francisco Mireles, John Schliemann, and Benjamin Santos
J. Phys.: Condens. Mat. 30, 335702 (2018). - Spin relaxation in wurtzite nanowires
Michael Kammermeier, Paul Wenk, Florian Dirnberger, Dominique Bougeard, and John Schliemann
Phys. Rev. B 98, 035407 (2018). - Persistent Spin Textures in Semiconductor Nanostructures
John Schliemann
Rev. Mod. Phys. 89, 011001 (2017). - Weak (Anti-)Localization in Tubular Semiconductor Nanowires with Spin-Orbit Coupling
Michael Kammermeier, Paul Wenk, John Schliemann, Sebastian Heedt, and Thomas Schäpers
Phys. Rev. B 93, 205306 (2016) (Editor´s Suggestion). - Conserved Spin Quantity in Strained Hole Systems with Rashba and Dresselhaus Spin-Orbit Coupling
Paul Wenk, Michael Kammermeier, and John Schliemann
Phys. Rev. B 93, 115312 (2016). - Ultra long spin decoherence times in graphene quantum dots with a small number of nuclear spins
Moritz Fuchs, John Schliemann, and Björn Trauzettel
Phys. Rev. B 88, 245441 (2013). (Editor´s Suggestion)
Driven many-body systems
- Many-Body Localization: Transitions in Spin Models
John Schliemann, Joao Vitor I. Costa, Paul Wenk, and J. Carlos Egues
Phys. Rev. B 103 174203 (2021), [arXiv] - Floquet-Drude conductivity
Martin Wackerl, Paul Wenk, and John Schliemann
Phys. Rev. B 101, 184204 (2020). - Driven Hofstadter butterflies and related topological invariants
Martin Wackerl, Paul Wenk, and John Schliemann
Phys. Rev. B 100, 165411 (2019). - The interplay between spin-orbit interactions and a time-dependent electromagnetic field in monolayer graphene
Andreas Scholz, Alexander Lopez, and John Schliemann
Phys. Rev. B 88, 045118 (2013). - Graphene with time-dependent spin-orbit coupling: Truncated Magnus expansion approach
A. Lopez, A. Scholz, Z. Z. Sun, and J. Schliemann
Eur. Phys. J. B 86, 366 (2013). - Floquet spin states in graphene under ac driven spin-orbit interaction
A. Lopez, Z. Z. Sun, and J. Schliemann
Phys. Rev. B 85, 205428 (2012).
Quantum information theory
Auslese beim Auslesen (external link, opens in a new window)
John Schliemann
Physik Journal, 9. Jhg., Oktober 2010 (in German).
Quantum gravity
- On the canonical structure of general relativity with a limiting curvature and its relation to loop quantum gravity
Norbert Bodendorfer, Andreas Schäfer, and John Schliemann
Phys. Rev. D 97, 084057 (2018). - Holographic signatures of resolved cosmological singularities
Norbert Bodendorfer, Andreas Schäfer, and John Schliemann
JHEP 06 (2019) 043. - Classical and Quantum Polyhedra
John Schliemann
Phys. Rev. D 90, 124080 (2014).