scispace - formally typeset
Journal ArticleDOI

Optical sampling of subnanosecond light pulses

M. A. Duguay, +1 more
- 01 Feb 1969 - 
- Vol. 16, Iss: 2, pp 238-238
Reads0
Chats0
TLDR
In this article, the authors describe a technique for the display of sub-nanosecond light pulses, which is the optical analog of the technique used in electronic sampling oscilloscopes.
Abstract
In this paper we shall describe a technique for the display of subnanosecond light pulses which is the optical analog of the technique used in electronic sampling oscilloscopes. The optical pulse waveform to be displayed is assumed to repeat itself with period T. A mode-locked laser provides a source of sampling pulses of a few picoseconds duration. The period of this laser is adjusted to be T + δT, where δT s is proportional to ∫ I 1 I 2 dt, where I 1 and I 2 are the intensities of the light signal beam and sampling beam, respectively. If the signal beam is slowly varying compared to the very brief sampling pulse, we have: Y s = constant × I 1 (t n ) where t n is the arrival time of the nth sampling pulse at the nonlinear crystal. Because of the slightly unequal periods, the sampling pulse scans the light signal in steps of δT seconds. Displays of the sum frequency signal Y s on a conventional oscilloscope therefore constitute a sampled display of the light signal. In an experiment to test the method, sampled displays of subnanosecond pulses generated by a mode-locked He-Ne laser (wavelength 0.633µ) were obtained. The source of sampling pulses, ∼4 psec in duration, was a mode-locked Nd:glass laser (wavelength 1.06µ). The two unfocussed beams were mixed in a KDP crystal and the sum frequency signal at 0.397µ was detected by a photomultiplier and displayed on an oscilloscope. The period T of the He-Ne laser pulses was 12.44 nanoseconds, and the sampling step δT was varied between 100 psec and 400 psec. Using this method the He-Ne laser pulse width was observed to vary between 700 psec and 900 psec depending on the He-Ne laser adjustment. These measurements were confirmed with a fast photodiode and an electronic sampling oscilloscope. The average He-Ne laser power was ∼1 mw. In the KDP crystal the sampling pulses converted red light into UV light with an efficiency of about 5%. Since with focussed beams an efficiency of better than 20% can be achieved, it appears possible to optically sample light signals with average powers much less than a milliwatt.

read more

Citations
More filters
Book ChapterDOI

Ultrafast fluorescence spectroscopy via upconversion applications to biophysics.

TL;DR: This chapter reviews basic concepts of nonlinear fluorescence upconversion, a technique whose temporal resolution is essentially limited only by the pulse width of the ultrafast laser.
Proceedings ArticleDOI

Optical rogue waves in integrable turbulence

TL;DR: In this article, the probability density function (PDF) of the optical power fluctuates randomly and rapidly with time, and it is found to evolve from the normal law to a strong heavy-tailed distribution along the propagation inside the nonlinear fiber.
Journal ArticleDOI

Field cross correlator for analysis of ultrafast signals

TL;DR: The cross-correlation function between two light fields is recorded with the help of a new device that features imaging capabilities that could be applied to the analysis of two-dimensional images with ultrashort time resolution.
Dissertation

Investigation of a fibre-optic Fizeau interferometer configuration and coherent fibre-optic imaging bundles for optical coherence tomography

TL;DR: In this article, the authors investigated and implemented configurations for a medical imaging technique called Optical Coherence Tomography (OCT), which is used in clinical environments that help the doctors to diagnose diseases before proceeding to treatment, and demonstrated several sets of image data that were collected from various samples using a Fizeau interferometer based OCT incorporating coherent imaging bundles.
Journal ArticleDOI

Low-Complexity TOAD-Based All-Optical Sampling Gate With Ultralow Switching Energy and High Linearity

TL;DR: In this article, a low-complexity ultralow switching energy and high-linearity all-optical sampling gate based on a terahertz optical asymmetric demultiplexer was constructed by placing a polarization-insensitive multiple-quantum-well semiconductor optical amplifier (PI-MQW-SOA) asymmetrically within a fiber loop mirror.
References
More filters
Book ChapterDOI

Ultrafast fluorescence spectroscopy via upconversion applications to biophysics.

TL;DR: This chapter reviews basic concepts of nonlinear fluorescence upconversion, a technique whose temporal resolution is essentially limited only by the pulse width of the ultrafast laser.
Proceedings ArticleDOI

Optical rogue waves in integrable turbulence

TL;DR: In this article, the probability density function (PDF) of the optical power fluctuates randomly and rapidly with time, and it is found to evolve from the normal law to a strong heavy-tailed distribution along the propagation inside the nonlinear fiber.
Journal ArticleDOI

Field cross correlator for analysis of ultrafast signals

TL;DR: The cross-correlation function between two light fields is recorded with the help of a new device that features imaging capabilities that could be applied to the analysis of two-dimensional images with ultrashort time resolution.
Dissertation

Investigation of a fibre-optic Fizeau interferometer configuration and coherent fibre-optic imaging bundles for optical coherence tomography

TL;DR: In this article, the authors investigated and implemented configurations for a medical imaging technique called Optical Coherence Tomography (OCT), which is used in clinical environments that help the doctors to diagnose diseases before proceeding to treatment, and demonstrated several sets of image data that were collected from various samples using a Fizeau interferometer based OCT incorporating coherent imaging bundles.
Journal ArticleDOI

Low-Complexity TOAD-Based All-Optical Sampling Gate With Ultralow Switching Energy and High Linearity

TL;DR: In this article, a low-complexity ultralow switching energy and high-linearity all-optical sampling gate based on a terahertz optical asymmetric demultiplexer was constructed by placing a polarization-insensitive multiple-quantum-well semiconductor optical amplifier (PI-MQW-SOA) asymmetrically within a fiber loop mirror.