Electrical Current from Quantum Vacuum Fluctuations in Nano-engines
arXiv:1504.02073 · doi:10.1103/PhysRevB.92.125306
Abstract
We theoretically investigate a quantum dot coupled to fermionic (electronic) leads and show how zero-point quantum fluctuations stemming from bosonic environments permit the rectification of the current. The bosonic baths are either external impedances modeled as tunable transmission lines or LC resonators (single-mode cavities). Voltage fluctuations stemming from the external impedances at zero temperature are described through harmonic oscillators (photon-like excitations) then producing the quantum vacuum fluctuations. The differing sizes of the zero-point fluctuations of the quantum vacuum break the spatial symmetry of the system if the quantum dot is coupled to two reservoirs or two junctions with different bosonic environments. We consider current rectification and power production when the system is operated as a heat engine in both non-resonant and resonant sequential tunneling cases.
9 pages
References in corpus (13)
- Circuit Quantum Electrodynamics with a Spin Qubit
- Controlled light-matter coupling for a single quantum dot embedded in a pillar microcavity using far-field optical lithography
- Thermoelectric energy harvesting with quantum dots
- Optimal energy quanta to current conversion
- Thermopower of a Kondo-correlated quantum dot
- Powerful and efficient energy harvester with resonant-tunneling quantum dots
- Inelastic Microwave Photon Scattering off a Quantum Impurity in a Josephson-Junction Array
- Quantum dot admittance probed at microwave frequencies with an on-chip resonator
- Fluctuation-Dissipation Relations of a Tunnel Junction Driven by a Quantum Circuit
- Photon-assisted tunneling with non-classical light
- Josephson-Kondo screening cloud in circuit quantum electrodynamics
- Effect of broadening in the weak coupling limit of vibrationally coupled electron transport through molecular junctions and the analogy to quantum dot circuit QED systems
- Electron-photon coupling in Mesoscopic Quantum Electrodynamics
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- Cyclic Superconducting Quantum Refrigerators Using Guided Fluxon Propagation
- Quantifying the impact of phonon scattering on electrical and thermal transport in quantum dots
- Fluctuating Forces Induced by Non Equilibrium and Coherent Light Flow
- The Quantum Measurement Spintronic Engine: Using Entanglement to Harvest Vacuum Fluctuations