Fluidity onset in graphene
Author(s)
Bandurin, Denis A.; Shytov, Andrey V.; Levitov, Leonid; Kumar, Roshan Krishna; Berdyugin, Alexey I.; Ben Shalom, Moshe; Grigorieva, Irina V.; Geim, Andre K.; Falkovich, Gregory; ... Show more Show less
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Viscous electron fluids have emerged recently as a new paradigm of strongly-correlated electron transport in solids. Here we report on a direct observation of the transition to this long-sought-for state of matter in a high-mobility electron system in graphene. Unexpectedly, the electron flow is found to be interaction-dominated but non-hydrodynamic (quasiballistic) in a wide temperature range, showing signatures of viscous flows only at relatively high temperatures. The transition between the two regimes is characterized by a sharp maximum of negative resistance, probed in proximity to the current injector. The resistance decreases as the system goes deeper into the hydrodynamic regime. In a perfect darkness-before-daybreak manner, the interaction-dominated negative response is strongest at the transition to the quasiballistic regime. Our work provides the first demonstration of how the viscous fluid behavior emerges in an interacting electron system.
Date issued
2018-10Department
Massachusetts Institute of Technology. Department of PhysicsJournal
Nature Communications
Publisher
Springer Nature
Citation
Bandurin, Denis A., Andrey V. Shytov, Leonid S. Levitov, Roshan Krishna Kumar, Alexey I. Berdyugin, Moshe Ben Shalom, Irina V. Grigorieva, Andre K. Geim, and Gregory Falkovich. “Fluidity Onset in Graphene.” Nature Communications 9, no. 1 (October 31, 2018). © 2018, The Author(s).
Version: Final published version
ISSN
2041-1723
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