Entangled photon source that can replace a pulsed laser in non-ablative multiphoton and nonlinear processes
A coherent, entangled photon source which uses a continuous wave laser to replace pulsed photon excitation sources in multiphoton nonlinear processes. In various embodiments, the device comprises a continuous wave photon laser creating electromagnetic radiation at a specific frequency and narrow linewidth. The emitted beam may be conditioned by an optical fiber to allow for efficient interaction with a nonlinear crystal. The nonlinear material is designed and fabricated in a specific manner, enabling the quantum mechanical process of a single photon with well-defined energy being converted into two or more photons which display quantum correlations. The nonlinear material and subsequent fiber-optic or free space components control the temporal, spatial, and polarization-related quantum correlations such that the entangled photons can create a signal in multi photon nonlinear processes that is the same or exceeds that of a pulsed photon source but at the average and peak powers of a continuous wave laser.
1 . A source of entangled photons, comprising
a waveguide implemented in a nonlinear material outputting entangled photons, comprising parametrically downconverted entangled photons having a wavelength, in response to continuous wave pump photons irradiating the waveguide; and
the nonlinear material comprising a spatially varying dielectric nonlinear susceptibility varying along the propagation direction of the pump photons in the waveguide, with the spatially varying dielectric nonlinear susceptibility chirped for phase matching the pump photons and the parametrically downconverted entangled photons so as to tailor a bandwidth spanned by the downconverted entangled photons that is based at least in part on a property of a material being measured using the entangled photons.
2 . The source of claim 1 , wherein:
the phase matching outputs the entangled photons with a flux, comprising a number of the entangled photons per second, and
the flux is sufficient for spectroscopy of a quantum system and
the flux is visible to the eye or measurable on a camera of the type integrated on a mobile phone camera.
3 . The source of claim 1 , wherein the phase matching outputs the entangled photons with a flux of at least 107 entangled photons per second.
4 . The source of claim 2 , wherein the spatially varying dielectric nonlinear susceptibility tailors a correlation of the entangled photons for an interaction with the material so that absorption of the entangled photons, in a multiphoton nonlinear process by the material, increases linearly with an intensity of the entangled photons or replicates an femtosecond or longer pulse spectroscopy.
5 . The source of claim 1 , wherein the spatially varying dielectric nonlinear susceptibility tailors a correlation of the entangled photons so that a response of a sample, comprising the material, to the entangled photons, in a multiphoton nonlinear process, is greater than a classical response of the sample to a classical two-photon nonlinear interaction.
6 . The source of claim 5 , wherein the response is fluorescence.
7 . The source of claim 1 , wherein the phase matching is such that the spectral power distribution of the entangled photons comprises 0.1-2.5 nW/nm for wavelengths of the entangled photons in a range of 600 nm- 1000 nm.
8 . The source of claim 1 , wherein a chirp of the spatially varying dielectric nonlinear susceptibility is defined by adjacent regions comprising a first region and a second region of the waveguide, each of the adjacent regions comprising a unit cell having different orientation of a nonlinear susceptibility, and a distance between center C 1 of the first region and the center C 2 of the second region is changed between a beginning and an end of the waveguide to form the output of the entangled photons.
9 . A spectrometer or imaging device comprising the source of claim 1 .
10 . A source of entangled photons, comprising
a waveguide implemented in a nonlinear material outputting entangled photons, comprising parametrically downconverted entangled photons, in response to continuous wave pump photons irradiating the waveguide; and
the nonlinear material comprising a spatially varying dielectric nonlinear susceptibility varying along the propagation direction of the pump photons in the waveguide, with the spatially varying dielectric nonlinear susceptibility chirped for phase matching the pump photons and the parametrically downconverted entangled photons so that the entangled photons are correlated for a duration of time shorter than a shortest decoherence time of a material being measured using the entangled photons.
11 . The source of claim 10 , wherein the spatially varying nonlinear susceptibility is tuned to create temporal correlations of the entangled photons that are matched to a timescale of a two-photon light absorption or fluorescence process in the material.
12 . The source of claim 10 , wherein the spatially varying nonlinear susceptibility tailors a correlation of the entangled photons having a wavelength, so as to increase matching of an absorption or scattering cross-section, of the material for the entangled photons in a multiphoton nonlinear process, with an absorption or scattering cross section of the material for a single photon having the wavelength.
13 . A spectroscopic apparatus comprising the source of claim 10 , wherein the apparatus compares an interaction of the entangled photons by the material to that produced by a single photon.
14 . The spectroscopic apparatus of claim 13 , wherein the spectroscopic apparatus uses time and spectral resolved spectroscopy to compare the entangled versus classical interactions.
15 . A spectroscopic apparatus comprising the source of claim 11 , further comprising: an interferometer for manipulating the entangled photons before interacting with the material; and
a detector detecting a response of the material, such that a CW laser is used for femtosecond or longer spectroscopy.
16 . The source of claim 10 , wherein a chirp of the spatially varying nonlinear susceptibility is defined by adjacent regions comprising a first region and a second region of the waveguide, each of the adjacent regions comprising a unit cell having different orientation of a nonlinear susceptibility, and a distance between center C 1 of the first region and the center C 2 of the second region is changed between a beginning and an end of the waveguide to form the output of the entangled photons.
17 . The source of claim 16 , wherein:
the waveguide comprises a patterned waveguide including a periodically poled ferroelectric material or a metamaterial, and
each of the regions between the two adjacent regions has the dielectric nonlinear susceptibility comprising an electric polarization 180 degrees out of phase with the electric polarization of the two adjacent regions.
18 . The source of claim 17 , wherein the entangled photons are created in response to a spontaneous parametric down-conversion interaction of a field of the pump photons with the nonlinear material and a vacuum field, each of the pump photons being converted to the entangled photons comprising two or more down converted photons.
19 . The source of claim 16 , wherein the nonlinear material comprises Lithium Niobate or Potassium Titanyl Phosphate (KTP) or Lithium Tantalate.
20 . The source of claim 10 , wherein the spatially varying dielectric nonlinear susceptibility tailors correlations and bandwidth of the entangled photons so that the entangled photons simulate a pulsed photon in performing a single or multiphoton interaction with the material.
21 . The source of claim 1 , wherein the property is a molecular lifetime of the material.
22 . A chip comprising the source of claim 1 , wherein the waveguide and the chip output a single mode spatial distribution of photonic states of the entangled photons.
23 . A chip comprising the source of claim 10 , wherein the waveguide and the chip output a single mode spatial distribution of photonic states of the entangled photons.