Pulsed laser device

US2018106963A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2018106963-A1
Application numberUS-201715836023-A
CountryUS
Kind codeA1
Filing dateDec 8, 2017
Priority dateJun 10, 2015
Publication dateApr 19, 2018
Grant date

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  1. Title

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  2. Abstract

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  5. First independent claim

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A pulsed laser device includes: a semiconductor laser device that outputs laser light having a single wavelength; a semiconductor optical amplifier that receives the laser light output from the semiconductor laser device and amplifies the laser light to output; and a semiconductor-optical-amplifier driver that supplies a pulse-modulated semiconductor-optical-amplifier driving current to the semiconductor optical amplifier.

First claim

Opening claim text (preview).

1 . A pulsed laser device comprising: a semiconductor laser device that outputs laser light having a single wavelength; a semiconductor optical amplifier that receives the laser light output from the semiconductor laser device and amplifies the laser light to output; and a semiconductor-optical-amplifier driver that supplies a pulse-modulated semiconductor-optical-amplifier driving current to the semiconductor optical amplifier. 2 . The pulsed laser device according to claim 1 , further comprising: a controller that includes a semiconductor-laser-device driver that supplies a pulse-modulated semiconductor-laser-device driving current to the semiconductor laser device, and the semiconductor-optical-amplifier driver, wherein the controller synchronizes pulse modulation of the semiconductor-laser-device driving current with pulse modulation of the semiconductor-optical-amplifier driving current. 3 . The pulsed laser device according to claim 2 , wherein a modulation pulse width of the semiconductor-laser-device driving current is greater than a modulation pulse width of the semiconductor-optical-amplifier driving current. 4 . The pulsed laser device according to claim 2 , further comprising: an optical fiber amplifier that receives the laser light output from the semiconductor optical amplifier and amplifies the laser light to output, wherein the optical fiber amplifier includes an optical amplification fiber that has an optical amplification effect by simulated emission, and a pumping source that outputs pumping light to be supplied to the optical amplification fiber, and the controller further includes a pumping-source driver that supplies a pulse modulated pumping-source driving current to the pumping source, and synchronizes the pulse modulation of the semiconductor-laser-device driving current, the pulse modulation of the semiconductor-optical-amplifier driving current, with pulse modulation of the pumping-source driving current. 5 . The pulsed laser device according to claim 4 , wherein a modulation pulse width of the pumping-source driving current is greater than the modulation pulse width of the semiconductor-laser-device driving current and the modulation pulse width of the semiconductor-optical-amplifier driving current. 6 . The pulsed laser device according to claim 4 , wherein the controller is configured to synchronizes the pulse modulation of the semiconductor-optical-amplifier driving current with the pulse modulation of the pumping-source driving current such that pulsed laser light output from the semiconductor optical amplifier is input to the optical fiber amplifier in a latter half of a period of a pumped state in the optical fiber amplifier. 7 . The pulsed laser device according to claim 4 , wherein the controller is configured to synchronizes the pulse modulation of the semiconductor-optical-amplifier driving current with the pulse modulation of the pumping-source driving current such that a pumped state in the optical fiber amplifier is turned into an OFF state at substantially a same time when a state of pulsed laser light output from the semiconductor optical amplifier becomes an OFF state. 8 . The pulsed laser device according to claim 4 , wherein the controller is configured to perform control such that the modulation pulse width of the pumping-source driving current is longer than a relaxation time of the optical fiber amplifier. 9 . The pulsed laser device according to claim 4 , wherein the controller is configured to perform control such that as the modulation pulse width of the pumping-source driving current decreases, the pumping-source driving current increases. 10 . The pulsed laser device according to claim 4 , wherein the controller is configured to perform control such that when relaxation time of the optical fiber amplifier is longer than a period of an OFF state in pulses of the pumping-source driving current, the pumping-source driver supplies a pumping-source driving current of a direct current of a predetermined value to the pumping source. 11 . The pulsed laser device according to claim 4 , further comprising: an optical bandpass filter that is disposed in a subsequent stage of the optical fiber amplifier, and that selectively passes light having a wavelength of the laser light output from the semiconductor laser device. 12 . The pulsed laser device according to claim 1 , further comprising: an optical fiber amplifier that receives the laser light output from the semiconductor optical amplifier and amplifies the laser light to output. 13 . The pulsed laser device according to claim 4 , further comprising: a booster optical-fiber amplifier that is disposed in a subsequent stage of the optical fiber amplifier, and that receives the laser light output from the optical fiber amplifier and amplifies the laser light to output. 14 . The pulsed laser device according to claim 13 , wherein the booster optical-fiber amplifier includes an effective-mode cross-section expander that expands an effective-mode cross-sectional area of the received laser light, and an effective-mode cross-section expanding optical-amplification fiber that amplifies laser light that is expanded the effective-mode cross-section area, while propagating in a single mode in a state that the effective-mode cross-sectional area has been expanded. 15 . The pulsed laser device according to claim 14 , wherein the effective-mode cross-section expander converts a propagation mode of the received laser light propagated in a fundamental mode into a higher order mode, and the effective-mode cross-section expanding optical-amplification fiber amplifies the laser light in the higher order mode while propagating in the single mode. 16 . The pulsed laser device according to claim 15 , wherein the booster optical-fiber amplifier further includes an effective-mode cross-section reducer that converts the propagation mode of the laser light in the higher order mode that has been amplified by the effective-mode cross-section expanding optical-amplification fiber into the fundamental mode. 17 . The pulsed laser device according to claim 14 , wherein the effective-mode cross-section expander converts the propagation mode of the received laser light propagated in the fundamental mode of the optical fiber into a multimode, and the effective-mode cross-section expanding optical-amplification fiber leaks components of the higher order mode out of the laser light in the multimode, and amplifies components of the fundamental mode while propagating in the single mode. 18 . The pulsed laser device according to claim 1 , further comprising: a plurality of the semiconductor laser devices that output laser light beams having wavelengths different from each other; and an optical coupler that couples the laser light beams output by the semiconductor laser devices to output to the semiconductor optical amplifier. 19 . The pulsed laser device according to claim 2 , further comprising: a plurality of the semiconductor laser devices that output laser light beams having wavelengths different from each other; and an optical coupler that couples the laser light beams output by the semiconductor laser devices to output to the semiconductor optical amplifier. 20 . The pulsed laser device according to claim 18 , wherein the semiconductor laser devices, the optical coupler, and the semiconductor optical amplifier are a monolithically integrated to form an integrated-semiconductor laser devi

Assignees

Inventors

Classifications

  • Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating · CPC title

  • by monitoring the optical output parameters · CPC title

  • by using a thermo-electric cooler [TEC], e.g. Peltier element · CPC title

  • emitting more than one wavelength · CPC title

  • H01S5/026Primary

    Monolithically integrated components, e.g. waveguides, monitoring photo-detectors, drivers (stabilisation of output H01S5/06) · CPC title

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What does patent US2018106963A1 cover?
A pulsed laser device includes: a semiconductor laser device that outputs laser light having a single wavelength; a semiconductor optical amplifier that receives the laser light output from the semiconductor laser device and amplifies the laser light to output; and a semiconductor-optical-amplifier driver that supplies a pulse-modulated semiconductor-optical-amplifier driving current to the sem…
Who is the assignee on this patent?
Furukawa Electric Co Ltd
What technology area does this patent fall under?
Primary CPC classification H01S5/026. Mapped technology areas include Electricity.
When was this patent published?
Publication date Thu Apr 19 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).