Out-of-equilibrium criticalities in graphene superlattices
Authors/Creators
- Alexey. I. Berdyugin1
- Na Xin1
- Haoyang Gao2
- Sergey Slizovskiy1
- Zhiyu Dong2
- Shubhadeep Bhattacharjee1
- P. Kumaravadivel1
- Shuigang Xu1
- Leonid. A. Ponomarenko3
- Matthew Holwill1
- Denis. A. Bandurin1
- Minsoo Kim1
- Yang Cao1
- Mark. T. Greenaway4
- Kostya. S. Novoselov1
- Irina. V. Grigorieva1
- Kenji Watanabe5
- Takashi Taniguchi5
- Vladimir. I. Fal´ko1
- Leonid. S. Levitov2
- Roshan Krishna Kumar6
- Andre. K. Geim1
- 1. University of Manchester
- 2. Massachusetts Institute of Technology
- 3. Lancaster University
- 4. Loughborough University
- 5. National Institute for Materials Science
- 6. Institute of Photonic Sciences
Description
In thermodynamic equilibrium, current in metallic systems is carried by electronic states near the Fermi energy whereas the filled bands underneath contribute little to conduction. Here we describe a very different regime in which carrier distribution in graphene and its superlattices is shifted so far from equilibrium that the filled bands start playing an essential role, leading to a critical-current behavior. The criticalities develop upon the velocity of electron flow reaching the Fermi velocity. Key signatures of the out-of-equilibrium state are current-voltage characteristics resembling those of superconductors, sharp peaks in differential resistance, sign reversal of the Hall effect, and a marked anomaly caused by the Schwinger-like production of hot electron-hole plasma. The observed behavior is expected to be common for all graphene-based superlattices.
Files
Preprint.pdf
Files
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