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Thorlabs electro optic phase modulator
Electro Optic Phase Modulator, supplied by Thorlabs, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/electro-optic+modulator/electro+modulator+optic/arxiv__2602__22693-94-13-16
Average 86 stars, based on 1 article reviews
electro optic phase modulator - by Bioz Stars, 2026-09
86/100 stars

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Related Articles

other:

Article Title: Characterizing stratum corneum structure, barrier function, and chemical content of human skin with coherent Raman scattering imaging
Article Snippet: For SRS, the Stokes beam intensity was modulated using an electro-optic modulator (EO-AM-R-20-C2, Thorlabs, Newton, NJ) driven at 20 MHz.

Article Title: Differentiation of Col I and Col III Isoforms in Stromal Models of Ovarian Cancer by Analysis of Second Harmonic Generation Polarization and Emission Directionality
Article Snippet: A custom LABVIEW program (National Instruments, Austin, TX) controlled the Electro-Optic Modulator (power), liquid-crystal rotator, and Glan-Laser Polarizer (ThorLabs) and was interfaced with the FluoView scanning system (Olympus) using a data acquisition card (model No. PCI-6024E; National Instruments).

Article Title: Deep tissue scattering compensation with three-photon F-SHARP
Article Snippet: The electro-optic modulator (EOM, EO-AM-NR-C3, Thorlabs) introduces a relative phase shift between the horizontally and the vertically polarised beam (for details on the mechanism, see ( )).

Article Title: Laser Spectroscopy of Hydrocarbons for Applications in Atmospheric and Space Science
Article Snippet: Created with Inkscape using optics package by Alexander Franzen.”° The frequency-stabilized light maintains the cavity length through a piezoelectric motor PDH locked using 20.1 MHz sidebands added by an electro-optic modulator (Thorlabs EO-PM-NR-C3).

Article Title: Silica-coated ruthenium-complex nanoprobes for two-photon oxygen microscopy in biological media
Article Snippet: The laser is tuned to λ = 800 nm and the beam is modulated using an electro-optic modulator (EOM; Thorlabs EO-AM-NR-C1) driven by a 40 kHz sinusoidal signal.

Article Title: Two-Dimensional Platinum Diselenide Waveguide-Integrated Infrared Photodetectors
Article Snippet: Laser light of a diode laser at 1550 nm wavelength were modulated at 1 kHz frequency using an electro-optic modulator (Thorlabs LN81S-FC) and guided above the grating couplers of the samples using a single-mode fiber.



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Image Search Results


( A ) A TAI, analogous to a lens array, redistributes a spatial image into an array of spots. This device focuses coherent light rays, represented by orange arrows in the image of interest, that are approximately parallel to each other within the extent of a lens. In contrast, the incoherent noise components (gray) point in random directions and are not focused, allowing to discriminate the image of interest from the noise background. ( B ) Recovery of a deteriorated quantum state using the qTAI, here shown in the temporal domain. The joint distribution of the biphotons undergoes two successive (2D) phase manipulations, namely, temporal phase modulation and dispersive propagation, respectively equivalent to a 2D lens array and free-space diffraction processes. The temporal phase mask can conveniently be limited to a phase excursion of 2 π on each photon for practical implementation via electro-optic technologies. The excursion of the spectral phase profile can easily extend over hundreds of π through available dispersive elements. This leads to an energy redistribution in the joint distribution, allowing for denoising via postselection on the output peaks.

Journal: Science Advances

Article Title: Quantum state revival via coherent energy redistribution

doi: 10.1126/sciadv.ady8981

Figure Lengend Snippet: ( A ) A TAI, analogous to a lens array, redistributes a spatial image into an array of spots. This device focuses coherent light rays, represented by orange arrows in the image of interest, that are approximately parallel to each other within the extent of a lens. In contrast, the incoherent noise components (gray) point in random directions and are not focused, allowing to discriminate the image of interest from the noise background. ( B ) Recovery of a deteriorated quantum state using the qTAI, here shown in the temporal domain. The joint distribution of the biphotons undergoes two successive (2D) phase manipulations, namely, temporal phase modulation and dispersive propagation, respectively equivalent to a 2D lens array and free-space diffraction processes. The temporal phase mask can conveniently be limited to a phase excursion of 2 π on each photon for practical implementation via electro-optic technologies. The excursion of the spectral phase profile can easily extend over hundreds of π through available dispersive elements. This leads to an energy redistribution in the joint distribution, allowing for denoising via postselection on the output peaks.

Article Snippet: The pump beam is generated by modulating a continuous-wave laser (NKT Koheras BASIK E15, centered at 1550.1 nm) with a pulse sequence at a repetition rate of 52.8 MHz using an electro-optic intensity modulator driven by an AWG (Keysight M8196A, 32-GHz analog bandwidth).

Techniques:

( A ) Radio frequency (RF) signal generated by the AWG used to drive the electro-optic PM for the qTAI, as measured by a 28-GHz real-time oscilloscope (blue trace, left y axis), compared to the theoretically designed phase pattern (dashed red trace, right y axis). ( B ) Classical characterization of the energy redistribution of a ~25-ns square pulse, with a measured amplification factor of 43, as shown by the scaled version of the waveform measured at the output of the sampling module with the PM off. The vertical scale is shown as normalized units (n.u.). The TAI pulses are separated by t q = 2.476 n s, featuring a pulse intensity full width at half maximum (FWHM) of 33.7 ps, as shown in ( C ).

Journal: Science Advances

Article Title: Quantum state revival via coherent energy redistribution

doi: 10.1126/sciadv.ady8981

Figure Lengend Snippet: ( A ) Radio frequency (RF) signal generated by the AWG used to drive the electro-optic PM for the qTAI, as measured by a 28-GHz real-time oscilloscope (blue trace, left y axis), compared to the theoretically designed phase pattern (dashed red trace, right y axis). ( B ) Classical characterization of the energy redistribution of a ~25-ns square pulse, with a measured amplification factor of 43, as shown by the scaled version of the waveform measured at the output of the sampling module with the PM off. The vertical scale is shown as normalized units (n.u.). The TAI pulses are separated by t q = 2.476 n s, featuring a pulse intensity full width at half maximum (FWHM) of 33.7 ps, as shown in ( C ).

Article Snippet: The pump beam is generated by modulating a continuous-wave laser (NKT Koheras BASIK E15, centered at 1550.1 nm) with a pulse sequence at a repetition rate of 52.8 MHz using an electro-optic intensity modulator driven by an AWG (Keysight M8196A, 32-GHz analog bandwidth).

Techniques: Generated, Amplification, Sampling