Crossover behavior of the thermal conductance and Kramers' transition rate theory
arXiv:1312.5422 · doi:10.1038/srep17506
Abstract
Kramers' theory frames chemical reaction rates in solution as reactants overcoming a barrier in the presence of friction and noise. For weak coupling to the solution, the reaction rate is limited by the rate at which the solution can restore equilibrium after a subset of reactants have surmounted the barrier to become products. For strong coupling, there are always sufficiently energetic reactants. However, the solution returns many of the intermediate states back to the reactants before the product fully forms. Here, we demonstrate that the thermal conductance displays an analogous physical response to the friction and noise that drive the heat current through a material or structure. A crossover behavior emerges where the thermal reservoirs dominate the conductance at the extremes and only in the intermediate region are the intrinsic properties of the lattice manifest. Not only does this shed new light on Kramers' classic turnover problem, this result is significant for the design of devices for thermal management and other applications, as well as the proper simulation of transport at the nanoscale.
8 pages, 5 figures. Supplementary Information available at the journal publication or by request from the authors
References in corpus (7)
- Length-dependent thermal conductivity in suspended single-layer graphene
- Heat Transport in low-dimensional systems
- Thermal transport in nanostructures
- Driving denaturation: Nanoscale thermal transport as a probe of DNA melting
- 1D momentum-conserving systems: the conundrum of anomalous versus normal heat transport
- Microscopic Quantum Mechanical Foundation of Fourier's Law
- Tunable Thermal Switching via DNA-Based Nano Devices
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