Multiplexed single-photon state preparation using a fibre-loop architecture
arXiv:1503.03546 · doi:10.1103/PhysRevA.92.053829
Abstract
Heralded spontaneous parametric down-conversion (SPDC) has become the mainstay for single-photon state preparation in present-day photonics experiments. Because they are heralded, in principle one knows when a single photon has been prepared. However, the heralding efficiencies in experimentally realistic SPDC sources are typically very low. To overcome this, multiplexing techniques have been proposed which employ a bank of SPDC sources in parallel, and route successfully heralded photons to the output, thereby effectively boosting the heralding efficiency. However, running a large bank of independent SPDC sources is costly and requires complex switching. We analyse a multiplexing technique based on time-bin encoding that allows the heralding efficiency of just a single SPDC source to be increased. The scheme is simple and experimentally viable using present-day technology. We analyse the operation of the scheme in terms of experimentally realistic considerations, such as losses, detector inefficiency, and pump-power.
Major update including several new results. Additional references and figures
References in corpus (21)
- Detecting Single Infrared Photons with 93% System Efficiency
- A 2D Quantum Walk Simulation of Two-Particle Dynamics
- Photon number resolution using a time-multiplexed single-photon detector
- Integrated spatial multiplexing of heralded single photon sources
- Enhancing multiphoton rates with quantum memories
- Entanglement generation using silicon wire waveguide
- Scalable boson-sampling with time-bin encoding using a loop-based architecture
- Linear Optical Quantum Metrology with Single Photons: Exploiting Spontaneously Generated Entanglement to Beat the Shot-Noise Limit
- High quantum-efficiency photon-number-resolving detector for photonic on-chip information processing
- Hybrid photonic circuit for multiplexed heralded single photons
- Low-Filling-Factor Superconducting Single Photon Detector with High System Detection Efficiency
- Effect of Loss on Multiplexed Single-Photon Sources
- Highly efficient heralding of entangled single photons
- Absolute emission rates of Spontaneous Parametric Down Conversion into single transverse Gaussian modes
- Modelling and optimization of photon pair sources based on spontaneous parametric down-conversion
- Efficient generation of twin photons at telecom wavelengths with 10 GHz repetition-rate tunable comb laser
- Asymmetric Architecture for Heralded Single Photon Sources
- Statistics of multiphoton events in spontaneous parametric down-conversion
- A simple scheme for universal linear optics quantum computing with constant experimental complexity using fiber-loops
- Optimization of periodic single-photon sources
- Photon-pair generation in photonic crystal fibrebre with a 1.5GHz modelocked VECSEL
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- Optimization of periodic single-photon sources based on combined multiplexing
- Optimization of multiplexed single-photon sources operated with photon-number-resolving detectors
- Performance of a temporally multiplexed single-photon source with imperfect devices
- Single-photon sources based on asymmetric spatial multiplexing with optimized inputs
- Spatially multiplexed single-photon sources based on incomplete binary-tree multiplexers
- Photon-number parity of heralded single photons from a Bragg-reflection waveguide reconstructed loss-tolerantly via moment generating function
- Scheme for sub-shot-noise transmission measurement using a time multiplexed single-photon source
- Mechanisms and Opportunities for Tunable High-Purity Single Photon Emitters: A Review of Hybrid Perovskites and Prospects for Bright Squeezed Vacuum
- Cavity-based optical switching via phase modulation in warm rubidium vapor