Wavelength conversion mechanism and method for wavelength conversion
The wavelength conversion mechanism addresses the deterioration issue of optical elements by branching and polarizing ultraviolet laser light, allowing high-power ultraviolet laser output with extended element life and maintained pulse energy.
Patent Information
- Application Number
- JP2024020814
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-02-15
- Publication Date
- 2025-08-27
AI Technical Summary
Ultraviolet laser light with high output power causes photochemical reactions that lead to deterioration of branching optical elements, reducing their effectiveness and the output power of the laser system.
A wavelength conversion mechanism that branches wavelength-converted light into multiple systems in the time domain using a branching optical system and multiple ultraviolet wavelength conversion elements, adjusting the polarization ratio with a Pockels cell and polarizing beam splitter to reduce the repetition frequency and maintain pulse energy, thereby extending the life of the optical elements.
The mechanism enables the output of multiple systems of high-power ultraviolet laser light without deteriorating the branching optical elements, ensuring high-precision processing over a long period with maintained pulse energy.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a wavelength conversion mechanism and a wavelength conversion method for obtaining ultraviolet laser light used in various laser processing and laser measurement. [Background technology]
[0002] In recent years, laser light has been used for various processing such as inspection, marking, cutting, drilling, welding, and hardening of objects. Laser light with a wavelength of around 532 nm to 1064 nm has high energy intensity and is suitable for various processing such as cutting or welding of metals, glass, etc. Laser light in the deep ultraviolet region with a wavelength of around 200 nm to 350 nm is also used for microprocessing and inspection of electronic materials such as semiconductors and composite materials.
[0003] A solid-state laser light source device that outputs laser light with a wavelength shorter than the near-infrared region is configured to include a seed light source that outputs laser light with a wavelength in the near-infrared region, an optical amplifier that amplifies the laser light output from the seed light source, and a nonlinear optical element that functions as a wavelength conversion element that converts the wavelength of the laser light amplified by the optical amplifier to a target wavelength.
[0004] In order to improve processing efficiency and processing accuracy, there is a demand for a laser light source device that can generate ultraviolet laser pulse light with a pulse width of several nanoseconds or less, preferably several tens of picoseconds or less, a repetition frequency of several hundred megahertz or less, and a high peak power.
[0005] For example, Patent Document 1 proposes a laser light source device including: a seed light source that outputs pulsed light by a gain switching method; a fiber amplifier that amplifies the pulsed light output from the seed light source; a solid-state amplifier that amplifies the pulsed light output from the fiber amplifier; a nonlinear optical element that wavelength-converts the pulsed light output from the solid-state amplifier and outputs the converted pulsed light; a semiconductor optical amplifier that is disposed between the seed light source and the solid-state amplifier and amplifies the pulsed light output from the seed light source; and a control unit.
[0006] The control unit is configured to execute a gain switching control process for driving the seed light source at a desired repetition rate, and a semiconductor optical amplifier control process for controlling an injection current of the semiconductor optical amplifier in accordance with the repetition rate of the seed light source. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] WO2018 / 203483 publication Summary of the Invention [Problem to be solved by the invention]
[0008] The above-described laser light source device can produce ultraviolet laser light with a large output power of several watts to several tens of watts. If the pulsed light output from such a laser light source device can be branched into multiple systems of pulsed light using a branching optical system, it becomes possible to process multiple objects simultaneously, dramatically improving processing efficiency.
[0009] However, ultraviolet laser light with a high output power causes a photochemical reaction between oxygen and impurities in the air, such as sulfurous acid, and the reaction products adhere to the surface of the branching optical element, causing it to become cloudy, or cause a photochemical reaction with the components of the branching optical element, causing the optical element to become cloudy. Not only does this cause deterioration of the optical element, but it also poses the problem of causing a decrease in the output power of the ultraviolet laser light at the processing point.
[0010] An object of the present invention is to provide a wavelength conversion mechanism and a wavelength conversion method that can output multiple systems of ultraviolet laser light with high output power (pulse energy) without causing deterioration of the branching optical elements. [Means for solving the problem]
[0011] In order to achieve the above-mentioned object, a first characteristic configuration of the wavelength conversion mechanism according to the present invention is that it is a wavelength conversion mechanism that wavelength-converts wavelength-converted light, which is pulsed laser light with a predetermined repetition frequency, into ultraviolet laser light, and is equipped with a branching optical system that branches the wavelength-converted light into pulse units in the time domain, and a plurality of ultraviolet wavelength conversion elements that wavelength-convert each wavelength-converted light branched by the branching optical system into ultraviolet laser light.
[0012] When wavelength-converted light, i.e., laser light before being wavelength-converted to ultraviolet laser light by an ultraviolet wavelength conversion element, enters the branching optical system, the wavelength-converted light is branched into multiple pulses in the time domain by the branching optical system. That is, the wavelength-converted light is branched into multiple beams without attenuation of the pulse energy of the wavelength-converted light. The wavelength of the wavelength-converted light need only be longer than the ultraviolet wavelength. The pulse energy of the branched wavelength-converted light is guided to the ultraviolet wavelength conversion element while maintaining approximately the same pulse energy as the wavelength-converted light before branching, generating multiple ultraviolet laser beams. Furthermore, the repetition frequency of the wavelength-converted light incident on each ultraviolet wavelength conversion element is lower than the repetition frequency of the wavelength-converted light before branching, thereby extending the life of the ultraviolet wavelength conversion element. Using such wavelength-converted light in laser processing enables high-precision processing over a long period of time. For example, in drilling, a high-power deep ultraviolet laser pulse can be used with a small number of pulses, i.e., in a short time, to achieve a uniformly shaped hole.
[0013] The second characteristic configuration is that, in addition to the first characteristic configuration described above, the branching optical system includes a Pockels cell that adjusts the wavelength-converted light so that the distribution ratio of P-polarized components to S-polarized components in the time domain becomes a predetermined ratio and outputs the adjusted light, and a polarized beam splitter that branches the wavelength-converted light adjusted to the predetermined ratio by the Pockels cell, based on the predetermined ratio.
[0014] A Pockels cell is an electro-optic modulator (EOM) used to switch the polarization direction through which laser light passes, and by adjusting the voltage applied to the electro-optic modulator in synchronization with the repetition frequency of the wavelength-converted light, for example, the distribution ratio of the P-polarized and S-polarized components of the wavelength-converted light can be adjusted to a predetermined ratio. When the wavelength-converted light, whose distribution ratio of the P-polarized and S-polarized components has been adjusted to a predetermined ratio by the Pockels cell using this principle, is incident on a polarizing beam splitter, the P-polarized and S-polarized components are separated and extracted.
[0015] The third characteristic configuration of the present invention is that, in addition to the second characteristic configuration described above, the branching optical system is provided in a plurality of stages.
[0016] By providing multiple stages of branching optical systems, the repetition frequency of the wavelength-converted light incident on each ultraviolet wavelength conversion element becomes a lower repetition frequency corresponding to the number of branches than the repetition frequency of the wavelength-converted light before branching, thereby further extending the life of the ultraviolet wavelength conversion element and obtaining multiple systems of ultraviolet wavelength-converted light in which the pulse energy of the wavelength-converted light is maintained for a long period of time.
[0017] The fifth characteristic configuration of the present invention is that, in addition to any one of the first to fourth characteristic configurations described above, the ultraviolet wavelength conversion element is made of CLBO or BBO.
[0018] CLBO or BBO can be suitably used as the ultraviolet wavelength conversion element.
[0019] The wavelength conversion method according to the present invention is characterized in that it is a wavelength conversion method for wavelength-converting wavelength-converted light, which is pulsed laser light having a predetermined repetition frequency, into ultraviolet laser light, and includes a branching step for branching the wavelength-converted light into pulse units in the time domain using a branching optical system, and an ultraviolet wavelength conversion step for wavelength-converting each wavelength-converted light branched in the branching step into multiple lines of ultraviolet laser light using multiple ultraviolet wavelength conversion elements. [Effects of the Invention]
[0020] As described above, according to the present invention, it is possible to provide a wavelength conversion mechanism and a wavelength conversion method that can output multiple systems of ultraviolet laser light with high output power (pulse energy) without causing deterioration of the branching optical elements. [Brief explanation of the drawings]
[0021] [Figure 1] 1 is a block diagram of a laser light source device using a wavelength conversion mechanism according to the present invention. [Figure 2] (a) is an explanatory diagram of a wavelength conversion mechanism equipped with a branching optical system and an ultraviolet wavelength conversion element, (b) is an explanatory diagram of the waveform of the main parts of the wavelength conversion mechanism, and (c) is an explanatory diagram of a wavelength conversion mechanism equipped with a power density adjustment unit. [Figure 3] FIG. 10 is an explanatory diagram of a wavelength conversion mechanism including branching optical systems arranged in multiple stages. DETAILED DESCRIPTION OF THE INVENTION
[0022] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS A laser light source device including a wavelength conversion mechanism and a wavelength conversion method according to embodiments of the present invention will be described below. As shown in FIG. 1, the laser light source device 1 includes a seed light source 10 that outputs linearly polarized pulsed laser light at a predetermined repetition rate, an optical amplifier 20 that amplifies the laser light output from the seed light source 10, a wavelength conversion unit 40 that converts the wavelength of the laser light amplified by the optical amplifier 20, and a control unit 100.
[0023] A distributed feedback laser diode (hereinafter referred to as "DFB laser") that outputs laser light in a single longitudinal mode is used as the seed light source 10. The seed light source 10 is driven by a control unit 100 using a gain switching method, and the DFB laser outputs laser light S1 with a wavelength of 1064 nm, a single pulse, or a predetermined repetition rate arbitrarily selected within a range of several megahertz or less, and a desired pulse width of several nanoseconds or less, preferably several hundred picoseconds or less.
[0024] The gain switching method is a method for generating pulsed laser light with a short pulse width and high peak power by utilizing relaxation oscillation, a resonance phenomenon that appears in the frequency and time domains when an injection current is applied to a semiconductor laser.
[0025] A fiber amplifier or a solid-state amplifier can be used as the optical amplifier 20. An optical switch element 30 composed of an acousto-optic modulator (AOM) is provided downstream of the optical amplifier 20. When a gate signal is output from the control unit 100 to an RF driver that drives the acousto-optic modulator AOM, a diffraction grating is generated in the crystal that constitutes the acousto-optic element by a transducer (piezoelectric conversion element) to which a high-frequency signal is applied from the RF driver, and diffracted light of the laser light S3 incident on the acousto-optic element proceeds to the downstream stage via a reflecting mirror M1. When the RF driver is stopped, the pulsed light incident on the acousto-optic element passes through as is without being diffracted and is attenuated by an optical damper D.
[0026] That is, when the optical switch element 30 is turned on by a gate signal, the diffracted laser light S4 propagates from the optical amplifier 20 to a first wavelength conversion element 42 described below, and when the optical switch element 30 is turned off by a gate signal, the propagation of the laser light from the optical amplifier 20 to the first wavelength conversion element 42 is blocked. The optical switch element 30 makes it possible to selectively stop the output of laser light from the laser light source device 1. The optical switch element 30 is switched by a switching signal input to the control unit 100 from a laser processing apparatus that uses the laser light source device 1, or the like.
[0027] The wavelength conversion unit 40 includes a first wavelength conversion element 42 and a second wavelength conversion element 44. The laser light S4 having a wavelength of 1064 nm amplified by the optical amplifier 20 is incident on an LBO crystal (LiB3O5), which is a nonlinear optical element functioning as the first wavelength conversion element 42, and is wavelength-converted into laser light S5 having a wavelength of 532 nm. The reflecting mirrors M2 and M3 function as filters for separating the pulsed light having a wavelength of 1064 nm that has passed through the first wavelength conversion element 42, and the separated laser light is attenuated by an optical damper D.
[0028] The laser beam S5 wavelength-converted by the first wavelength conversion element 42 is split into two laser beams S6 and S7 via a splitting optical system 50, and then split into two laser beams S6 and S7. These laser beams are then split into two laser beams S6 and S7 via a splitting optical system 50. The splitting optical system 50 splits the laser beam S5 wavelength-converted by the first wavelength conversion element 42 into two laser beams S6 and S7. The splitting optical system 50 splits the laser beam S6 and S7 ... 10 ) and is wavelength-converted into deep ultraviolet light S8 and S9 with a wavelength of 266 nm. Reflecting mirrors M4 and M5 function as filters for separating the laser light with a wavelength of 532 nm generated by the first wavelength conversion element 42, and the separated laser light is attenuated by an optical damper D.
[0029] The branching optical system 50 branches the wavelength-converted light, i.e., in this embodiment, the laser light before being wavelength-converted to ultraviolet laser light by the ultraviolet wavelength conversion element 44 (laser light S5 wavelength-converted by the first wavelength conversion element 42), into pulse units in the time domain and guides it to each ultraviolet wavelength conversion element.
[0030] That is, the wavelength conversion mechanism 80 of the present invention is configured by the branching optical system 50 and the second wavelength conversion element 44, and the second wavelength conversion element 44 functions as the ultraviolet wavelength conversion element of the present invention. Hereinafter, the second wavelength conversion element 44 will be referred to as the ultraviolet wavelength conversion element 44. Note that the ultraviolet wavelength conversion element 44 is made of a CLBO crystal (CsLiBO 10 It is also possible to use a nonlinear optical element other than the above, such as a BBO crystal (β-BaB2O4).
[0031] The splitting optical system 50 includes a Pockels cell 52 that adjusts the wavelength-converted light so that the distribution ratio between the P-polarized component and the S-polarized component becomes a predetermined ratio in the time domain and outputs the adjusted light, and a polarizing beam splitter 54 that splits the wavelength-converted light adjusted to the predetermined ratio by the Pockels cell 52, based on the predetermined ratio. By adjusting the distribution ratio between the P-polarized component and the S-polarized component, it is possible to adjust the pulse energy of each deep-ultraviolet light wavelength-converted by each ultraviolet wavelength conversion element 44.
[0032] As also shown in FIG. 2(a), in this embodiment, the wavelength-converted light S5 is switched in the time domain by the Pockels cell 52 to either a P-polarized component or an S-polarized component and output, and the wavelength-converted light switched into the P-polarized component and the S-polarized component by the Pockels cell 52 is separated into the P-polarized component and the S-polarized component by the polarizing beam splitter 54.
[0033] The S-polarized component S7 transmitted through the polarizing beam splitter 54 is incident along the optical axis on one of the ultraviolet wavelength conversion elements 44, and deep-ultraviolet laser light S9 is output. The P-polarized component S6 reflected by the polarizing beam splitter 54 is reflected by the reflecting mirror 56, and after its polarization direction is rotated by 90° by the half-wave plate 58, it is incident on the other ultraviolet wavelength conversion element 44, and deep-ultraviolet laser light S8 is output. The half-wave plate 58 is intended to adjust the polarization direction of the incident light so that a phase matching condition for the downstream ultraviolet wavelength conversion element 44 is established, and the half-wave plate 58 may be installed on the side of the S-polarized component S7 transmitted through the polarizing beam splitter 54.
[0034] The Pockels cell 52 is an electro-optic modulator (EOM) used to switch the polarization direction through which laser light passes. By adjusting the voltage applied to the electro-optic modulator, for example, in synchronization with the repetition frequency of the wavelength-converted light, the distribution ratio between the P-polarized component and the S-polarized component of the wavelength-converted light output from the seed light source 10 and in a linearly polarized state is adjusted to a predetermined ratio. The wavelength-converted light, whose distribution ratio between the P-polarized component and the S-polarized component has been adjusted to a predetermined ratio by the Pockels cell, is incident on the polarizing beam splitter, whereby the P-polarized component and the S-polarized component are separated and extracted. The predetermined ratio may be any value that allows the polarizing beam splitter 54 to separate and extract the P-polarized component and the S-polarized component, and is not limited to a specific value.
[0035] When wavelength-converted light S5 with a predetermined repetition rate f is incident on Pockels cell 52, whose polarization direction is switched by control unit 100 at a period of 1 / f, the light is separated in the time domain into an S-polarized component with a repetition rate of f / 2 and a P-polarized component with a repetition rate of f / 2. As shown in Figure 2(a), when the laser light output from Pockels cell 52 is incident on polarizing beam splitter 54, the light is split into an S-polarized component S7 with a repetition rate of f / 2 and a P-polarized component S6 with a repetition rate of f / 2. The S-polarized component S7 and the P-polarized component S6 are out of phase with each other by half a period (1 / f).
[0036] As shown in FIG. 2(b), due to the characteristics of the Pockels cell 52, there is a small intensity of S-polarized component S between the pulses of the wavelength-converted light S7 that has been separated into S-directional components. L The wavelength-converted light S6 contains pulsed noise light components including small elliptically polarized components, and there is a small intensity P-polarized component P between the pulses of the wavelength-converted light S6 that has been separated into P-directional components. L The noise light component includes pulsed noise components including small elliptically polarized components.
[0037] Therefore, as shown in FIG. 2(b), a noise light component of slight intensity shifted by half a period (1 / f) is superimposed on the P-polarized light component S6 of repetition rate f / 2 reflected by the polarized beam splitter 54, and a noise light component of slight intensity shifted by half a period (1 / f) is superimposed on the S-polarized light component of repetition rate f / 2 that has passed through the polarized beam splitter 54.
[0038] However, the noise light components with a low intensity are not wavelength converted because the incident intensity is not sufficient to allow wavelength conversion by the ultraviolet wavelength conversion element 44, and ultimately the ultraviolet wavelength conversion element 44 outputs wavelength-converted light S8 corresponding to the P-polarized component with a repetition frequency of f / 2 and a phase shifted by half a period (1 / 2f), and wavelength-converted light S9 corresponding to the S-polarized component with a repetition frequency of f / 2 and a phase shifted by half a period (1 / 2f) from that of the wavelength-converted light S8.
[0039] In other words, the ultraviolet wavelength conversion element 44 functions as a filter that removes, without wavelength conversion, the P-direction component of slight intensity that is shifted by half a period and superimposed on the P-polarized component of repetition frequency f / 2 that is branched in pulse units in the time domain by the branching optical system 50, and the S-direction component of slight intensity that is shifted by half a period and superimposed on the S-polarized component of repetition frequency f / 2.
[0040] By providing the branching optical system 50 in the stage preceding the ultraviolet wavelength conversion element 44, there is no need for a branching optical system that branches the ultraviolet laser light, which would cause deterioration of the optical elements after wavelength conversion by the ultraviolet wavelength conversion element 44. Even in a laser light source device 1 that outputs such high-power deep ultraviolet laser light, deterioration of the branching optical system 50 does not occur. Furthermore, the wavelength-converted light incident on each ultraviolet wavelength conversion element 44 has its repetition frequency reduced to f / 2 while almost maintaining the intensity (pulse energy) of the wavelength-converted light having the repetition frequency f, so the life of the ultraviolet wavelength conversion element 44 can be extended.
[0041] 1, the laser light source device 1 includes a power density adjusting unit 60 that adjusts the power density of the laser light incident on the ultraviolet wavelength conversion element 44. The power density adjusting unit 60 can be configured with a beam expander provided between the Pockels cell 52 and the polarizing beam splitter 54. The power density adjusting unit 60 makes it possible to most efficiently convert the wavelength of the wavelength-converted light into deep ultraviolet light, and also to extend the life of the ultraviolet wavelength conversion element 44.
[0042] 1, the beam expander constituting the power density adjusting unit 60 is disposed inside the branching optical system 50, specifically between the Pockels cell 52 and the polarizing beam splitter 54, but it may be disposed in a stage upstream of the ultraviolet wavelength conversion element 44. For example, as shown in FIG. 2(c), in addition to being disposed between the Pockels cell 52 and the polarizing beam splitter 54, the beam expander may be disposed in a stage upstream of the Pockels cell 52, immediately before the ultraviolet wavelength conversion element 44, or the like.
[0043] In the embodiment described above, an example has been described in which the laser light having a wavelength of 532 nm, which has been wavelength-converted by the first wavelength conversion element 42, is branched into multiple systems by the branching optical system 50. However, the branching optical system 50 may be arranged in the optical path upstream of the first wavelength conversion element 42. That is, the branching optical system 50 may be configured to branch the laser light having a wavelength of 1064 nm output from the seed light source 10. In this case, it is preferable to arrange the branching optical system 50 in a stage subsequent to the optical amplifier 20. This is because, if the branching optical system 50 is arranged in a stage prior to the optical amplifier 20, an optical amplifier 20 is required for each branched light, which increases costs.
[0044] In other words, the wavelength conversion mechanism 80 according to the present invention only needs to include a branching optical system 50 that branches the wavelength-converted light and a plurality of ultraviolet wavelength conversion elements 44 that respectively convert the wavelength of the wavelength-converted light branched by the branching optical system 50, and it is permissible to place other optical elements between the branching optical system 50 and the ultraviolet wavelength conversion elements 44.
[0045] FIG. 3 shows branching optical systems 50A and 50B in which the branching optical system 50 of the first embodiment is cascaded in two stages. The upstream branching optical system 50A includes a first Pockels cell 52A that switches the incident wavelength-converted light into either a P-polarized component or an S-polarized component in the time domain and outputs the converted light, a polarizing beam splitter 54A that branches the wavelength-converted light separated into the P-polarized component and the S-polarized component by the first Pockels cell 52A, and a first reflecting mirror 56A.
[0046] The downstream branching optical system 50B includes a second Pockels cell 52B that switches the incident wavelength-converted light into either a P-polarized component or an S-polarized component in the time domain and outputs the converted light, a polarizing beam splitter 54B that branches the wavelength-converted light separated into the P-polarized component and the S-polarized component by the second Pockels cell 52B, and a second reflecting mirror 56B.
[0047] For example, laser light in the infrared region with a wavelength of 1064 nm or laser light in the visible light region with a wavelength of 532 nm and a repetition rate of f is split by the first-stage splitting optical system 50A into a P-polarized component with a repetition rate of f / 2 and an S-polarized component with a repetition rate of f / 2 that is shifted in phase from the P-polarized component by half a period (1 / f).
[0048] Furthermore, the P-polarized component with a repetition rate of f / 2 and the S-polarized component with a repetition rate of f / 2 are each branched by the second-stage branching optical system 50B into a P-polarized component with a repetition rate of f / 4 and an S-polarized component with a repetition rate of f / 4 that is shifted in phase from the P-polarized component by a half period (½f). The wavelength-converted light is branched into four systems by the second-stage branching optical system 50B. Furthermore, either the P-polarized component or the S-polarized component of the wavelength-converted light branched into four systems is polarized by 90° by the wave plate 58 and is incident on the four ultraviolet wavelength conversion elements 44 provided in the subsequent stage.
[0049] As described above, by providing multiple stages of branching optical systems 50, it becomes possible to output multiple laser beams. For example, if a branching optical system is provided for each of two branches of laser beam, the laser beam can be branched into four branches, and if a branching optical system is provided for each of four branches of laser beam, the laser beam can be branched into eight branches. Although the repetition frequency decreases with each branching, deep ultraviolet light with high output intensity can be obtained over a long period of time without causing a decrease in output power (pulse energy) while suppressing deterioration of the ultraviolet wavelength conversion element 44.
[0050] In the embodiment described above, a configuration has been described in which a laser beam having a wavelength of 1064 nm is output from the seed light source 10, is wavelength-converted by the first wavelength conversion element 42 to a laser beam having a wavelength of 532 nm, and is then wavelength-converted to a laser beam having a wavelength of 266 nm by the ultraviolet wavelength conversion element 44. However, the wavelength of the seed light, the converted wavelength by the first wavelength conversion element 42, and the converted wavelength by the ultraviolet wavelength conversion element 44 are not limited to the values described above, and it is possible to select a seed light source having an appropriate wavelength depending on the application, such as 1030 nm, 1550 nm, or 976 nm as the wavelength of the seed light.
[0051] Furthermore, it is possible to generate harmonics, sum frequencies, and difference frequencies with these wavelengths as fundamental waves through nonlinear optical elements. Nonlinear optical elements other than those mentioned above can also be used as nonlinear optical elements. For example, instead of the CLBO crystal, which is an ultraviolet wavelength conversion element, BBO crystal, KBBF crystal, SBBO crystal, KABO crystal, BABO crystal, etc. can be used.
[0052] That is, the wavelength conversion mechanism 80 according to the present invention may include a plurality of ultraviolet wavelength conversion elements 44 and a branching optical system 50 that causes laser light to be incident on each of the ultraviolet wavelength conversion elements 44. In other words, it may include a branching optical system provided in front of the wavelength conversion elements that convert the wavelength into ultraviolet laser light.
[0053] The seed light source 10 is not limited to a DFB laser, and a general Fabry-Perot type semiconductor laser other than a DFB laser can also be used. Also, the seed light source 10 is not limited to a pulsed laser light driven by a gain switching method.
[0054] As described above, the wavelength conversion method according to the present invention is a wavelength conversion method for wavelength-converting wavelength-converted light, which is pulsed laser light having a predetermined repetition rate, into ultraviolet laser light, and includes a branching step for branching the wavelength-converted light into pulse units in the time domain using a branching optical system, and an ultraviolet wavelength conversion step for wavelength-converting each wavelength-converted light branched in the branching step into multiple lines of ultraviolet laser light using multiple ultraviolet wavelength conversion elements. Therefore, the branching step can branch the pulsed wavelength-converted light having a predetermined repetition rate into multiple beams in the time domain.
[0055] The branching step includes a polarization adjustment step of adjusting the wavelength-converted light by a Pockels cell in the time domain on a pulse-by-pulse basis so that the distribution ratio of the P-polarized component to the S-polarized component is a predetermined ratio, and outputting the adjusted light, the wavelength-converted light having been adjusted to the predetermined ratio in the polarization adjustment step, by a polarizing beam splitter based on the predetermined ratio.
[0056] The above-described embodiment is merely an example of the present invention, and the scope of the present invention is not limited by the description. Furthermore, it goes without saying that the specific circuit configuration of each part and the optical elements used in the circuit can be appropriately selected or modified within the scope of the effects of the present invention. [Explanation of symbols]
[0057] 1: Laser light source device 10: Seed light source 20: Optical amplifier 30: Optical switch element 40: Wavelength conversion unit 42: First wavelength conversion element 44: Ultraviolet wavelength conversion element (second wavelength conversion element) 50: Branching optical system 52: Pockels cell 54: Polarizing beam splitter 56: Reflective mirror 80: Wavelength conversion mechanism 100: Control unit
Claims
1. A wavelength conversion mechanism that converts wavelength-converted light, which is pulsed laser light having a predetermined repetition frequency, into ultraviolet laser light, a branching optical system that branches the wavelength-converted light into pulses in a time domain; a plurality of ultraviolet wavelength conversion elements for converting the wavelength of each wavelength-converted light beam split by the splitting optical system into ultraviolet laser light; A wavelength conversion mechanism comprising:
2. The branching optical system includes a Pockels cell that adjusts the wavelength-converted light so that a distribution ratio of a P-polarized component and an S-polarized component in a time domain becomes a predetermined ratio and outputs the light. a polarization beam splitter that splits the wavelength-converted light, which has been adjusted to the predetermined ratio by the Pockels cell, based on the predetermined ratio; The wavelength conversion mechanism according to claim 1 , comprising:
3. 3. The wavelength conversion mechanism according to claim 2, wherein the branching optical system is provided in a plurality of stages.
4. 3. The wavelength conversion mechanism according to claim 2, wherein the light to be wavelength converted is a laser beam in the infrared range or a laser beam in the visible range.
5. 5. The wavelength conversion mechanism according to claim 1, wherein the ultraviolet wavelength conversion element is made of CLBO or BBO.
6. A wavelength conversion method for converting wavelength-converted light, which is pulsed laser light having a predetermined repetition frequency, into ultraviolet laser light, comprising: a branching step of branching the wavelength-converted light into pulse units in a time domain using a branching optical system; The wavelength conversion method further comprises an ultraviolet wavelength conversion step of converting the wavelength-converted light beams branched in the branching step into a plurality of ultraviolet laser beams using a plurality of ultraviolet wavelength conversion elements.
Citation Information
Patent Citations
Laser light source device and laser pulse light generating method
WO2018203483A1
Cited By
Method for producing colored wood
US12459159B2