Pulse slicer in laser systems

US10096963B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10096963-B2
Application numberUS-201715807418-A
CountryUS
Kind codeB2
Filing dateNov 8, 2017
Priority dateMar 21, 2016
Publication dateOct 9, 2018
Grant dateOct 9, 2018

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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Abstract

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An apparatus (such as a laser-based system) and method for providing optical pulses in a broad range of pulse widths and pulse energies uses a pulse slicer which is configured to slice a predefined portion having a desired pulse width of each of the one or more output optical pulses from a laser oscillator, in which timings of a rising edge and a falling edge of each sliced optical pulse relative to a time instance of a maximum of the corresponding each of the one or more output optical pulses from the laser oscillator, are chosen at least to maximize amplification efficiency of the optical amplifier, which may be located after the pulse slicer, and to provide the one or more amplified output optical pulses each having the desired pulse energy and pulse width.

First claim

Opening claim text (preview).

I claim: 1. A system comprising: a laser oscillator having a lasing medium and a back reflection mirror; an output mirror, configured to provide one or more output optical pulses; a pulse forming element between the back reflection mirror and the output mirror, the pulse forming element configured to provide formation of the one or more output optical pulses; a pulse slicer downstream of the laser oscillator and configured to slice a portion having a desired pulse width of each of the one or more output optical pulses; an optical amplifier downstream of the pulse slicer and configured to amplify the sliced portion of each of the one or more output optical pulses to a desired pulse energy to provide one or more amplified output optical pulses; wherein timings of a rising edge and a falling edge of each sliced optical pulse, relative to a time instance of a maximum of the corresponding each of the one or more output optical pulses, is chosen at least to maximize amplification efficiency of the optical amplifier and to provide the one or more amplified output optical pulses each having the desired pulse energy and pulse width; wherein the pulse forming element is a Q-switch component; wherein the Q-switch component is one of: a single Pockels cell or a dual Pockels cell; wherein the Pockels cell in the pulse slicer is a dual Pockels cell, and wherein the rising and falling edges of the each sliced optical pulse may be provided by two separate crystals respectively. 2. The system of claim 1 , wherein the two separate crystals are arranged in series and are run by two different voltage drivers connected in parallel. 3. The system of claim 2 , wherein one of the two voltage drivers provide a half-wave voltage to one of the two separate crystals that rotates 90 degrees the polarization plane of the output optical pulse so that the pulse goes through a polarizer in the pulse slicer without loss and defines the rising edge of the output pulse. 4. The system of claim 3 , wherein the other of the two voltage drivers provides a half-wave voltage to other of the two separate crystals that further rotates 90 degrees the polarization plane of the optical output pulse, so that the output optical pulse would not go through the polarizer in the pulse slicer, thus defining the falling edge of the sliced pulse. 5. The system of claim 1 , wherein the one of the single Pockels cell or the dual Pockels cell comprises a single crystal, a central terminal and two end terminals, and wherein the central and each end terminals form a Pockels cell switching element to implement the pulse slicer. 6. The system of claim 1 , wherein the pulse slicer comprises an input polarizer and an output polarizer which is crossed with the input polarizer to provide an optical isolation between the laser oscillator and the optical amplifier. 7. The system of claim 1 , wherein a range of pulse widths of the amplified output pulses is between 8 nanoseconds and 500 picoseconds. 8. The system of claim 1 , wherein the lasing medium comprises a solid-state material. 9. The system of claim 8 , wherein the solid-state material comprises a neodymium-doped yttrium aluminum garnet (Nd:YAG). 10. The system of claim 1 , wherein the lasing medium comprises a solid-state material pumped by an array of semiconductor lasers. 11. The system of claim 1 , wherein the lasing medium comprises a solid-state material pumped by a double flash lamp. 12. The system of claim 1 , wherein the pulse slicer is located outside of the laser oscillator. 13. A system comprising: a laser oscillator having a lasing medium and a back reflection mirror; an output mirror, configured to provide one or more output optical pulses; a pulse forming element between the back reflection mirror and the output mirror, the pulse forming element configured to provide formation of the one or more output optical pulses; a pulse slicer downstream of the laser oscillator and configured to slice a portion having a desired pulse width of each of the one or more output optical pulses; an optical amplifier downstream of the pulse slicer and configured to amplify the sliced portion of each of the one or more output optical pulses to a desired pulse energy to provide one or more amplified output optical pulses: and, wherein timings of a rising edge and a falling edge of each sliced optical pulse, relative to a time instance of a maximum of the corresponding each of the one or more output optical pulses, is chosen at least to maximize amplification efficiency of the optical amplifier and to provide the one or more amplified output optical pulses each having the desired pulse energy and pulse width, wherein the timings of the rising edge and the falling edge of each sliced optical pulse relative to the time instance of the maximum of the corresponding each of the one or more output optical pulses is from a matrix stored in a memory of the apparatus, and wherein the matrix is generated for predetermined ranges of input parameters including at least a range of desired pulse widths and a further range of desired pulse energies of the one or more amplified output optical pulses. 14. The system of claim 13 , wherein initially determined timings of the rising and falling edges of the each sliced optical pulse is further finely tuned by small changes in the determined timings for optimizing the amplified output optical pulses using an iteration process performed automatically. 15. The system of claim 13 , wherein initially determined timings of the rising and falling edges of the each sliced optical pulse is further finely tuned by small changes in the determined timings for optimizing the amplified output optical pulses using an iteration process performed automatically. 16. A system comprising: a laser oscillator having a lasing medium and a back reflection mirror; an output mirror, configured to provide one or more output optical pulses; a pulse forming element between the back reflection mirror and the output mirror, the pulse forming element configured to provide formation of the one or more output optical pulses; a pulse slicer downstream of the laser oscillator and configured to slice a portion having a desired pulse width of each of the one or more output optical pulses; an optical amplifier downstream of the pulse slicer and configured to amplify the sliced portion of each of the one or more output optical pulses to a desired pulse energy to provide one or more amplified output optical pulses: and, wherein timings of a rising edge and a falling edge of each sliced optical pulse, relative to a time instance of a maximum of the corresponding each of the one or more output optical pulses, is chosen at least to maximize amplification efficiency of the optical amplifier and to provide the one or more amplified output optical pulses each having the desired pulse energy and pulse width, wherein the pulse slicer is located inside of the laser oscillator between the reflection mirror and the output optical mirror. 17. A method comprising the steps of: receiving, by a controller in an apparatus from a user interface, input parameters for one or more output amplified optical pulses including at least a desired pulse width and an energy related parameter determining a desired pulse energy for each of the one or more pulses; providing, by the controller, in response to the received input parameters, a command signal to start a pulsed laser operation by a laser oscillator of the apparatus; receiving, by the controller from an optical detector (OD), a replica signal of laser outp

Assignees

Inventors

Classifications

  • Generation of pulses with special temporal shape or frequency spectrum · CPC title

  • Amplifier arrangements, e.g. MOPA · CPC title

  • YAG · CPC title

  • neodymium · CPC title

  • Stabilisation of the amplitude · CPC title

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What does patent US10096963B2 cover?
An apparatus (such as a laser-based system) and method for providing optical pulses in a broad range of pulse widths and pulse energies uses a pulse slicer which is configured to slice a predefined portion having a desired pulse width of each of the one or more output optical pulses from a laser oscillator, in which timings of a rising edge and a falling edge of each sliced optical pulse relati…
Who is the assignee on this patent?
Lumenis Ltd
What technology area does this patent fall under?
Primary CPC classification H01S3/115. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Oct 09 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).