Thermal energy and charge currents in multi-terminal nanorings

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Abstract

We study in experiment and theory thermal energy and charge transfer close to the quantum limit in a ballistic nanodevice, consisting of multiply connected one-dimensional electron waveguides. The fabricated device is based on an AlGaAs/GaAs heterostructure and is covered by a global top-gate to steer the thermal energy and charge transfer in the presence of a temperature gradient, which is established by a heating current. The estimate of the heat transfer by means of thermal noise measurements shows the device acting as a switch for charge and thermal energy transfer. The wave-packet simulations are based on the multi-terminal Landauer-Büttiker approach and confirm the experimental finding of a mode-dependent redistribution of the thermal energy current, if a scatterer breaks the device symmetry.

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Kramer, T., Kreisbeck, C., Riha, C., Chiatti, O., Buchholz, S. S., Wieck, A. D., … Fischer, S. F. (2016). Thermal energy and charge currents in multi-terminal nanorings. AIP Advances, 6(6). https://doi.org/10.1063/1.4953812

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