English
 
Help Privacy Policy Disclaimer
  Advanced SearchBrowse

Item

ITEM ACTIONSEXPORT

Released

Journal Article

Coulomb Drag in Graphene Near the Dirac Point

MPS-Authors

Ostrovsky,  P. M.
Max Planck Society;

External Resource
No external resources are shared
Fulltext (restricted access)
There are currently no full texts shared for your IP range.
Fulltext (public)
There are no public fulltexts stored in PuRe
Supplementary Material (public)
There is no public supplementary material available
Citation

Schutt, M., Ostrovsky, P. M., Titov, M., Gornyi, I. V., Narozhny, B. N., & Mirlin, A. D. (2013). Coulomb Drag in Graphene Near the Dirac Point. Physical Review Letters, 110(2): 026601.


Cite as: https://hdl.handle.net/21.11116/0000-000E-C5D7-1
Abstract
We study Coulomb drag in graphene near the Dirac point, focusing on the regime of interaction-dominated transport. We establish a novel, graphene-specific mechanism of Coulomb drag based on fast interlayer thermalization, inaccessible by standard perturbative approaches. Using the quantum kinetic equation framework, we derive a hydrodynamic description of transport in double-layer graphene in terms of electric and energy currents. In the clean limit the drag becomes temperature independent. In the presence of disorder the drag coefficient at the Dirac point remains nonzero due to higher-order scattering processes and interlayer disorder correlations. At low temperatures (diffusive regime) these contributions manifest themselves in the peak in the drag coefficient centered at the neutrality point with a magnitude that grows with lowering temperature. DOI: 10.1103/PhysRevLett.110.026601