Fluctuation-driven thermal transport in graphene double-layers at charge neutrality
arXiv:2206.07718 · doi:10.1103/PhysRevB.106.125304
Abstract
We develop a theory of fluctuation-driven phenomena in thermal transport in graphene double-layers. We work in the regime of electron hydrodynamics and focus on the double charge neutrality point. Although at the neutrality point charge transport is decoupled from the hydrodynamic flow, thermal fluctuations of electron density cause both drag and heat transfer between the layers. The thermal transport in the bilayer system is governed by these two phenomena. We express the drag friction coefficient and the interlayer thermal conductivity in terms of the interlayer distance and the intrinsic conductivity of the electron liquid. We then obtain the thermal conductance matrix and determine the spatial dependence of the hydrodynamic velocity and temperature in the system. For shorter system the thermal drag resistance is determined by drag. In longer systems the situation of perfect thermal drag is realized, in which the hydrodynamic velocities in both layers become equal in the interior of the systems. Estimates are given for the monolayer and bilayer graphene devices. The predictions of our theory can be tested by the high-resolution thermal imaging and Johnson-Nyquist nonlocal noise thermometry.
12 pages, 2 figures
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Cited by in corpus (7)
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- Transport signatures of plasmon fluctuations in electron hydrodynamics
- Hydrodynamics of the electronic Fermi liquid: a pedagogical overview
- Thermal transfer enhancement by hydrodynamic plasmons in electron bilayers
- Near-field heat transfer and drag resistance in bilayers of composite fermions
- Dragging of electric current by hydrodynamic flow at charge neutrality
- Fluctuation-induced giant magnetoresistance in charge-neutral graphene