Quantum dynamics of single-photon detection using functionalized quantum transport electronic channels
arXiv:1908.02342 · doi:10.1103/PhysRevResearch.1.013018
Abstract
Single photon detectors have historically consisted of macroscopic-sized materials but recent experimental and theoretical progress suggests new approaches based on nanoscale and molecular electronics. Here we present a theoretical study of photodetection in a system composed of a quantum electronic transport channel functionalized by a photon absorber. Notably, the photon field, absorption process, transduction mechanism, and measurement process are all treated as part of one fully-coupled quantum system, with explicit interactions. Using non-equilibrium, time-dependent quantum transport simulations, we reveal the unique temporal signatures of the single photon detection process, and show that the system can be described using optical Bloch equations, with a new non-linearity as a consequence of time-dependent detuning caused by the backaction from the transport channel via the dynamical Stark effect. We compute the photodetector signal-to-noise ratio and demonstrate that single photon detection at high count rate is possible for realistic parameters by exploiting a novel non-equilibrium control of backaction.
12 pages, 8 figures, to appear in Phys. Rev. Research
References in corpus (11)
- Significant-loophole-free test of Bell's theorem with entangled photons
- Renormalization of Molecular Electronic Levels at Metal-Molecule Interfaces
- Fermi velocity engineering in graphene by substrate modification
- Optical properties of current carrying molecular wires
- Photocurrents in nanotube junctions
- Theory of light-induced current in molecular-tunneling junctions excited with intense shaped pulses
- Electronic correlation in nanoscale junctions: Comparison of the GW approximation to a numerically exact solution of the single-impurity Anderson model
- Optical spectroscopy of molecular junctions: Nonequilibrium Green's functions perspective
- Fundamental Limits to Single-Photon Detection Determined by Quantum Coherence and Backaction
- General modeling framework for quantum photodetectors
- Color Detection Using Chromophore-Nanotube Hybrid Devices