Super-resolving phase measurement with short wavelength NOON states by quantum frequency up-conversion
arXiv:1703.04253 · doi:10.1103/PhysRevApplied.7.064025
Abstract
Precise measurements are the key to advances in all fields of science. Quantum entanglement shows higher sensitivity than achievable by classical methods. Most physical quantities including position, displacement, distance, angle, and optical path length can be obtained by optical phase measurements. Reducing the photon wavelength of the interferometry can further enhance the optical path length sensitivity and imaging resolution. By quantum frequency up conversion, we realized a short wavelength two photon number entangled state. Nearly perfect Hong Ou Mandel interference is achieved after both 1547-nm photons are up converted to 525 nm. Optical phase measurement of two photon entanglement state yields a visibility greater than the threshold to surpass the standard quantum limit. These results offer new ways for high precision quantum metrology using short wavelength quantum entanglement number state.
coments are welcome, manuscript under review
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- Multiplexing heralded single-photon in orbital angular momentum space
- Revealing photons behaviors in a birefringent interferometer
- Efficient 525nm laser generation in single or double resonant cavity
- Three-Photon Polarization Entanglement of Green Light