Minimal excitation single-particle emitters: Comparison of charge-transport and energy-transport properties

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Abstract

We investigate different types of time-dependently driven single-particle sources whose common feature is that they produce pulses of integer charge and minimally excite the Fermi sea. These sources are: a slowly driven mesoscopic capacitor, a Lorentzian-shaped time-dependent bias voltage, and a local gate-voltage modulation of a quantum Hall edge state. They differ by their specific driving protocols, e.g., they have a pure ac driving or a driving with a dc component. In addition, only in the first of these setups, strong confinement leading to a discrete energy spectrum of the conductor, is exploited for the single-particle emission. Here, we study if and how these basic differences impact transport properties. Specifically, we address time- and energy-resolved charge and energy currents, as well as their zero-frequency correlators (charge, energy, and mixed noise), as they are frequently used to characterize experiments in quantum optics with electrons. Beyond disparities due to a different number and polarity of particles emitted per period, we in particular identify differences in the impact, which temperature has on the observables for sources with and without energy-dependent scattering properties. We are able to characterize and quantify the effect of temperature by a small set of physically relevant parameter ratios.

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Dashti, N., Misiorny, M., Kheradsoud, S., Samuelsson, P., & Splettstoesser, J. (2019). Minimal excitation single-particle emitters: Comparison of charge-transport and energy-transport properties. Physical Review B, 100(3). https://doi.org/10.1103/PhysRevB.100.035405

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