Spatio-Spectral Quantum State Estimation of Photon Pairs from Optical Fiber Using Stimulated Emission
arXiv:2410.00298 · doi:10.1364/OPTICAQ.547491
Abstract
Developing a quantum light source that carries more than one bit per photon is pivotal for expanding quantum information applications. Characterizing a high-dimensional multiple-degree-of-freedom source at the single-photon level is challenging due to the large parameter space as well as limited emission rates and detection efficiencies. Here, we characterize photon pairs generated in optical fiber in the transverse-mode and frequency degrees of freedom by applying stimulated emission in both degrees of freedom while detecting in one of them at a time. This method may be useful in the quantum state estimation and optimization of various photon-pair source platforms in which complicated correlations across multiple degrees of freedom may be present.
14 pages, 5 figures; supplemental document 6 pages, 5 figures
References in corpus (15)
- Efficient and mode selective spatial mode multiplexer based on Multi-Plane Light Conversion
- Photon pair-state preparation with tailored spectral properties by spontaneous four-wave mixing in photonic-crystal fiber
- Orbital angular momentum of photons and the entanglement of Laguerre-Gaussian modes
- Self-guided quantum tomography
- Robust and Efficient High-dimensional Quantum State Tomography
- Frequency-bin entanglement from domain-engineered down-conversion
- Fiber-based photon pair generation: a tutorial
- All-Fiber Source and Sorter for Multimode Correlated Photons
- Measuring the joint spectral mode of photon pairs using intensity interferometry
- Dual-Pump Approach to Photon-Pair Generation: Demonstration of Enhanced Characterization and Engineering Capabilities
- Generating polarization-entangled photon pairs using cross-spliced birefringent fibers
- Configurable spatio-temporal properties in a photon-pair source based on spontaneous four wave mixing with multiple transverse modes
- Orchestrating time and color: a programmable source of high-dimensional entanglement
- Highly multimode visible squeezed light with programmable spectral correlations through broadband up-conversion
- Stimulated emission tomography for efficient characterization of spatial entanglement