Number-State Reconstruction with a Single Single-Photon Avalanche Detector
arXiv:2308.13603 · doi:10.1364/OPTICAQ.504308
Abstract
Single-photon avalanche detectors (SPADs) are crucial sensors of light for many fields and applications. However, they are not able to resolve photon number, so typically more complex and more expensive experimental setups or devices must be used to measure the number of photons in a pulse. Here, we present a methodology for performing photon number-state reconstruction with only one SPAD. The methodology, which is cost-effective and easy to implement, uses maximum-likelihood techniques with a detector model whose parameters are measurable. We achieve excellent agreement between known input pulses and their reconstructions for coherent states with up to 10 photons and peak input photon rates up to several Mcounts/s. When detector imperfections are small, we maintain good agreement for coherent pulses with peak input photon rates of over 40 Mcounts/s, greater than one photon per detector dead time. For anti-bunched light, the reconstructed and independently measured pulse-averaged values of are also consistent with one another. Our algorithm is applicable to light pulses whose pulse width and correlation time scales are both at least a few detector dead times. These results, achieved with single commercially available SPADs, provide an inexpensive number-state reconstruction method and expand the capabilities of single-photon detectors.
11 pages, 5 figures plus supplementary 26 pages, 11 figures; v3 contains minor wording and content revisions
References in corpus (21)
- Continuous-variable optical quantum state tomography
- Single-photon imaging over 200 km
- Photon number resolution using a time-multiplexed single-photon detector
- Experimental reconstruction of photon statistics without photon counting
- True photo-counting statistics of multiple on-off detectors
- Photon counting with loop detector
- Transition from antibunching to bunching in cavity QED
- Comparative study of afterpulsing behavior and models in single photon counting avalanche photo diode detectors
- On-demand indistinguishable single photons from an efficient and pure source based on a Rydberg ensemble
- Uncovering Quantum Correlations with Time-Multiplexed Click Detection
- Accurate detection of arbitrary photon statistics
- Detection of quantum light in the presence of noise
- Quantum interference between photons from an atomic ensemble and a remote atomic ion
- Efficiency of an enhanced linear optical Bell-state measurement scheme with realistic imperfections
- Real-Time Discrete SPAD Array Readout Architecture for Time of Flight PET
- Counting Statistics of Actively Quenched SPADs Under Continuous Illumination
- Numerical reconstruction of photon-number statistics from photocounting statistics: Regularization of an ill-posed problem
- Characterization of a photon-number resolving SNSPD using Poissonian and sub-Poissonian light
- Number-resolved imaging of Sr atoms in a long working distance optical tweezer
- Improved Spatial Resolution Achieved by Chromatic Intensity Interferometry
- Mode structure reconstruction by detected and undetected light
Cited by in corpus (3)
- Enhancement of Rydberg Blockade via Microwave Dressing
- Photon number distribution of squeezed light from a silicon nitride microresonator measured without photon number resolving detectors
- Fundamental limits on determination of photon number statistics from measurements with multiplexed on/off detectors