Pump module and laser

By introducing light homogenization components and reflectors into the pump module, the problem of uneven pump light distribution is solved, uniform excitation of the laser gain crystal and efficient energy utilization are achieved, and the service life of the laser is extended.

CN119812917BActive Publication Date: 2025-10-21INST OF SEMICONDUCTORS - CHINESE ACAD OF SCI
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Patent Information

Application Number
CN202411913464.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-24
Publication Date
2025-10-21
Estimated Expiration
2044-12-24

AI Technical Summary

Technical Problem

The uneven distribution of pump light intensity in existing pump modules leads to excessive local thermal stress in the laser gain crystal, low energy utilization, and uneven gain.

Method used

A light homogenization component is set between the pump source and the laser gain crystal, including a first and a second light-transmitting light homogenization lens. The lens is provided with a lens unit or a scattering microstructure for homogenizing the pump light so that it is evenly irradiated on the laser gain crystal, and the light not absorbed by the laser gain crystal is reflected by the reflector to improve energy utilization.

Benefits of technology

It effectively avoids excessive local thermal stress of the laser gain crystal, improves energy utilization, achieves uniformity of laser gain, and prolongs the service life of the laser.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the present application provides a kind of pumping module and laser.The pumping module includes pumping source, light uniformizing component and laser gain crystal, pumping source is used to emit pump light, several pumping sources are arranged along the periphery of laser gain crystal, light uniformizing component is arranged between pumping source and laser gain crystal, light uniformizing component can be transparent, light uniformizing component is used for pump light to pass through and make pump light homogenization, laser gain crystal is used to receive the pump light emitted by pumping source and homogenized after passing through light uniformizing component.The pumping module of the embodiment of the present application, light uniformizing component is arranged between pumping source and laser gain crystal, to homogenize the pump light passing through light uniformizing component, so that homogenized pump light is irradiated on laser gain crystal, to avoid that local thermal stress of laser gain crystal is too large, and the energy utilization of pumping module is high and gain is uniform.
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Description

Technical Field

[0001] The present invention relates to the field of lasers, and in particular to a pump module and a laser. Background Art

[0002] The pump module is a key component of a laser. In related art, the pump module includes a rod-shaped laser gain crystal and at least two pump sources located around the periphery of the laser gain crystal. The pump sources generate pump light and directly illuminate the laser gain crystal. However, the pump module in related art suffers from uneven pump light intensity distribution, leading to excessive local thermal stress in the laser gain crystal, low energy utilization, and uneven gain. Summary of the Invention

[0003] The present invention aims to solve one of the technical problems in the related art at least to a certain extent.

[0004] To this end, an embodiment of the present invention provides a pump module.

[0005] An embodiment of the present invention further provides a laser.

[0006] The pump module of the embodiment of the present invention includes:

[0007] A pump source, a light homogenizing component, and a laser gain crystal. The pump source is used to emit pump light. Several pump sources are arranged at intervals along the periphery of the laser gain crystal. The light homogenizing component is arranged between the pump source and the laser gain crystal. The light homogenizing component is light-transmissive and is used to allow the pump light to pass through and homogenize the pump light. The laser gain crystal is used to receive the pump light emitted by the pump source and homogenized by the light homogenizing component.

[0008] In the pump module of the embodiment of the present invention, the light homogenizing component is arranged between the pump source and the laser gain crystal to homogenize the pump light passing through the light homogenizing component so that the homogenized pump light is irradiated on the laser gain crystal, thereby avoiding excessive local thermal stress in the laser gain crystal and ensuring high energy utilization and uniform gain of the pump module.

[0009] In some embodiments, the light uniforming component includes a first light uniforming lens, the first light uniforming lens is light-transmissive, the first light uniforming lens has a convex or concave first lens unit, or the first light uniforming lens has a first scattering microstructure.

[0010] In some embodiments, the light homogenizing component further includes a second light homogenizing lens, which is translucent, and the first light homogenizing lens and the second light homogenizing lens are arranged sequentially along the direction from the pump source to the laser gain crystal, and the second light homogenizing lens has a convex or concave second lens unit, or the second light homogenizing lens has a second scattering microstructure.

[0011] In some embodiments, the first lens units are multiple and arranged in an array, the second lens units are multiple and arranged in an array, and the widths of the first lens units and the second lens units are both 10 micrometers to 999 micrometers.

[0012] In some embodiments, the first lens unit and the second lens unit are one of a convex lens, a concave lens, a Fresnel lens, and a honeycomb mirror.

[0013] In some embodiments, the first scattering microstructure is a rough surface formed on the first light uniforming lens by sandblasting or chemical etching, and the second scattering microstructure is a rough surface formed on the second light uniforming lens by sandblasting or chemical etching.

[0014] In some embodiments, the first light homogenizing lens is disposed corresponding to the pump source;

[0015] The pump module also includes a reflector, which includes a plurality of reflectors arranged at intervals along the periphery of the laser gain crystal. The reflectors and the first light-homogenizing lenses are alternately arranged and surround the periphery of the laser gain crystal. The reflectors are used to reflect the pump light away from the laser gain crystal.

[0016] In some embodiments, the second light homogenizing lens surrounds the periphery of the laser gain crystal, and the alternating reflective elements and the first light homogenizing lens surround the periphery of the second light homogenizing lens.

[0017] In some embodiments, the laser gain crystal is rod-shaped, the reflective element and the first light homogenizing lens are both arc-shaped plates extending along the axial direction of the laser gain crystal and bent along the circumference of the laser gain crystal, and the second light homogenizing lens is tubular extending along the axial direction of the laser gain crystal.

[0018] In some embodiments, the space between the second light homogenizing lens and the laser gain crystal is used for a cooling medium to pass through, and the cooling medium is light-transmissive.

[0019] In some embodiments, the reflective element further includes a connecting ring, the connecting ring surrounding the periphery of the laser gain crystal, the connecting ring being connected to the same end of at least two of the reflective sheets, and the first light homogenizing lens being connected between two adjacent reflective sheets;

[0020] The pump module further includes a mounting base, and the pump source, the connecting ring, at least one axial end of the second light homogenizing lens, and at least one axial end of the laser gain crystal are all connected to the mounting base.

[0021] The laser according to the embodiment of the present invention includes: the pump module according to any one of the above embodiments.

[0022] The laser of the embodiment of the present invention adopts the pump module of the embodiment of the present invention, so the laser gain crystal is not easily damaged, so that the laser of the embodiment of the present invention has a long service life, high energy utilization and uniform gain. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 is a schematic diagram of a pump module according to an embodiment of the present invention;

[0024] Figure 2 yes Figure 1 Schematic diagram of the first light homogenizing lens and the reflective element;

[0025] Figure 3 yes Figure 1 Schematic diagram of the second light uniforming lens;

[0026] Figure 4 Schematic diagram of a first lens unit and a second lens unit using a honeycomb mirror in a pump module according to an embodiment of the present invention;

[0027] FIG5( a ) is a schematic diagram of pump light irradiated on a laser gain crystal in a pump module of the related art;

[0028] FIG5( b ) is a schematic diagram of pump light irradiated on a laser gain crystal in a pump module according to an embodiment of the present invention.

[0029] Reference numerals:

[0030] 1. Pump source; 2. Light homogenization assembly; 21. First light homogenization lens; 211. First lens unit; 22. Second light homogenization lens; 221. Second lens unit; 3. Laser gain crystal; 4. Reflector; 41. Reflector sheet; 42. Connecting ring; 5. Installation base. DETAILED DESCRIPTION

[0031] The embodiments of the present invention are described in detail below, and examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to be used to explain the present invention, but should not be understood as limiting the present invention.

[0032] Reference below Figure 1-Figure 5(b) A pump module and a laser according to embodiments of the present invention are described.

[0033] like Figure 1-Figure 5(b) As shown, the pump module of the embodiment of the present invention includes a pump source 1 , a light homogenizing component 2 and a laser gain crystal 3 .

[0034] The pump source 1 is used to emit pump light, and a plurality of pump sources 1 are arranged at intervals along the periphery of the laser gain crystal 3. For example, Figure 1 As shown, the pump sources 1 are preferably, but not limited to, three arranged at intervals along the periphery of the laser gain crystal 3 .

[0035] The homogenizing assembly 2 is located between the pump source 1 and the laser gain crystal 3. The homogenizing assembly 2 is transparent and transmits light. It is used to pass the pump light and homogenize it. The laser gain crystal 3 receives the pump light emitted by the pump source 1 and homogenized by the homogenizing assembly 2.

[0036] FIG. (a) is a schematic diagram of the pump light irradiated on the laser gain crystal in the pump module of the related art. The peak power of the pump light of the related art is concentrated and is in the shape of a Gaussian beam.

[0037] As shown in Figure (b), this is a schematic diagram of the pump light irradiated on the laser gain crystal in the pump module of an embodiment of the present invention. The pump light in the pump module of the embodiment of the present invention is homogenized to be in the shape of a flat-top beam to avoid excessive peak power from damaging the laser gain crystal 3.

[0038] In the pump module of the embodiment of the present invention, the light homogenizing component is arranged between the pump source and the laser gain crystal to homogenize the pump light passing through the light homogenizing component so that the homogenized pump light is irradiated on the laser gain crystal, thereby avoiding excessive local thermal stress in the laser gain crystal and ensuring high energy utilization and uniform gain of the pump module.

[0039] In some embodiments, the light homogenizing assembly 2 includes a first light homogenizing lens 21 . The first light homogenizing lens 21 is light-transmissive and has a convex or concave first lens unit 211 , or the first light homogenizing lens 21 has a first scattering microstructure.

[0040] In such Figure 1 and Figure 2 In the illustrated example, the light homogenizing assembly 2 includes a light-transmissive first light homogenizing lens 21. In other words, the first light homogenizing lens 21 is transparent. The first light homogenizing lens 21 is disposed between the pump source 1 and the laser gain crystal 3. The first light homogenizing lens 21 has a first lens unit 211 that is convex or concave along the arrangement direction of the first light homogenizing lens 21 and the laser gain crystal 3. The first lens unit 211 can be disposed on the end face of the first light homogenizing lens 21 facing the laser gain crystal 3 or on the end face of the first light homogenizing lens 21 facing away from the laser gain crystal 3.

[0041] It is understandable that the first light homogenizing lens 21 is not limited to having the first lens unit 211. In other embodiments, the first light homogenizing lens 21 has a first scattering microstructure. The first scattering microstructure can be provided on the end face of the first light homogenizing lens 21 facing the laser gain crystal 3, or on the end face of the first light homogenizing lens 21 facing away from the laser gain crystal 3.

[0042] The pump light emitted by the pump source 1 passes through the first light homogenizing lens 21 when irradiating the laser gain crystal 3 . The first lens unit 211 or the first scattering microstructure homogenizes the pump light emitted by the pump source 1 when passing through the first light homogenizing lens 21 .

[0043] In some embodiments, the light homogenizing component 2 also includes a second light homogenizing lens 22, which is translucent. The first light homogenizing lens 21 and the second light homogenizing lens 22 are arranged in sequence along the direction from the pump source 1 to the laser gain crystal 3. The second light homogenizing lens 22 has a convex or concave second lens unit 221, or the second light homogenizing lens 22 has a second scattering microstructure.

[0044] In such Figure 1 and Figure 3 In the illustrated example, the light homogenizing assembly 2 further includes a second light homogenizing lens 22 that is translucent. In other words, the second light homogenizing lens 22 is transparent. The second light homogenizing lens 22 is disposed between the first light homogenizing lens 21 and the laser gain crystal 3. The second light homogenizing lens 22 includes a second lens unit 221 that is convex or concave along the arrangement direction of the second light homogenizing lens 22 and the laser gain crystal 3. The second lens unit 221 can be disposed on the end face of the second light homogenizing lens 22 facing the laser gain crystal 3 or on the end face of the second light homogenizing lens 22 facing away from the laser gain crystal 3.

[0045] It is understandable that the second light homogenizing lens 22 is not limited to having a second lens unit 221. In other embodiments, the second light homogenizing lens 22 has a second scattering microstructure. The second scattering microstructure can be arranged on the end face of the second light homogenizing lens 22 facing the laser gain crystal 3, or on the end face of the second light homogenizing lens 22 away from the laser gain crystal 3.

[0046] The pump light emitted by the pump source 1 passes through the first homogenizing lens 21 and the second homogenizing lens 22 in sequence during the process of irradiating the laser gain crystal 3. The first lens unit 211 or the first scattering microstructure homogenizes the pump light emitted by the pump source 1 for the first time when passing through the first homogenizing lens 21. The second lens unit 221 or the second scattering microstructure homogenizes the pump light after the first homogenization for the second time when passing through the second homogenizing lens 22, thereby ensuring the homogenization effect of the homogenizing component on the pump light.

[0047] In some embodiments, a plurality of first lens units 211 are arranged in an array, and a plurality of second lens units 221 are arranged in an array. The widths of the first lens units 211 and the second lens units 221 are both 10 micrometers to 999 micrometers.

[0048] like Figure 1-Figure 3As shown, the first lens unit 211 and the second lens unit 221 are arranged in an array, such as a rectangular array, an annular array, a circular array, a grid array, etc.

[0049] The width of the first lens unit 211 and the second lens unit 221 are both 10 μm to 999 μm, for example, 10 μm, 80 μm, 100 μm, 300 μm, 500 μm, 650 μm, 850 μm, 999 μm, etc. The width of the first lens unit 211 and the second lens unit 221 refers to the distance between the two farthest sides of the projection of the first lens unit 211 and the projection of the second lens unit 221, or the diameter of the projection of the first lens unit 211 and the projection of the second lens unit 221.

[0050] The pump light emitted by the pump source 1 sequentially passes through multiple first lens units 211 and multiple second lens units 221. For example, a 0.5 mm pump light spot can sequentially pass through 5 to 10 first lens units 211 and 5 to 10 second lens units 221. As a result, the pump light is split into many small parts by the multiple first lens units 211 and the multiple second lens units 221, and the parts are focused on the focal plane so that the light spots overlap, thereby achieving light spot homogenization. In other words, the pump light illuminates the laser gain crystal to form multiple light spots in the shape of a flat-top beam, as shown in Figure (b).

[0051] In some embodiments, the first lens unit 211 and the second lens unit 221 are one of a convex lens, a concave lens, a Fresnel lens, and a honeycomb lens.

[0052] like Figure 4 The first lens unit 211 and the second lens unit 221 are preferably, but not limited to, honeycomb lenses. Specifically, the projections of the first lens unit 211 and the second lens unit 221 each form a regular hexagon. In the projection of the first lens unit 211, each side of the regular hexagon is connected to another first lens unit 211. In the projection of the second lens unit 221, each side of the regular hexagon is connected to another second lens unit 221.

[0053] Preferably, the first lens unit 211 is formed on the surface of the first light homogenizing lens 21 by laser etching, chemical corrosion or molding, and the first lens unit 211 is formed on the surface of the second light homogenizing lens 22 by laser etching, chemical corrosion or molding.

[0054] In some embodiments, the first scattering microstructure is a rough surface formed on the first light homogenizing lens 21 by a sandblasting process or a chemical etching process. The rough surface of the first scattering microstructure can be formed on the end face of the first light homogenizing lens 21 facing the laser gain crystal 3, or it can be formed on the end face of the first light homogenizing lens 21 away from the laser gain crystal 3.

[0055] The second scattering microstructure is a rough surface formed on the second light homogenizing lens 22 by a sandblasting process or a chemical etching process. The rough surface of the second scattering microstructure can be formed on the end face of the second light homogenizing lens 22 facing the laser gain crystal 3, or on the end face of the second light homogenizing lens 22 facing away from the laser gain crystal 3.

[0056] Preferably, the size of the rough particles of the rough surface is 10 microns to 999 microns.

[0057] In some embodiments, the first light homogenizing lens 21 is disposed corresponding to the pump source 1. The pump module further includes a reflector 4, which includes a plurality of reflectors 41 spaced apart along the periphery of the laser gain crystal 3. The reflectors 41 are alternately disposed with the first light homogenizing lens 21 and surround the periphery of the laser gain crystal 3. The reflectors 41 are used to reflect the pump light away from the laser gain crystal 3.

[0058] like Figure 1 and Figure 2 As shown, the number of the first light homogenizing lenses 21 is preferably, but not limited to, three arranged corresponding to the pump sources 1 , and the three pump sources 1 surround the periphery of the laser gain crystal 3 and are preferably arranged at equal distances.

[0059] The first light homogenizing lens 21 is positioned in correspondence with the pump source 1 to ensure that the pump light emitted by the pump source 1 passes through and is homogenized by the first light homogenizing lens 21. The three pump sources 1 are arranged equidistantly to ensure that the pump light emitted by the three pump sources 1 is uniformly irradiated on the surface of the laser gain crystal 3 after homogenization, thereby preventing excessive local thermal stress.

[0060] The pump module further includes a reflector 4 , at least a portion of which is located between the pump source 1 and the laser gain crystal 3 .

[0061] The reflector 4 includes at least two, preferably three, reflective sheets 41 disposed between the pump source 1 and the laser gain crystal 3 and spaced around the laser gain crystal 3. The reflective sheets 41 are arranged alternately with the first light homogenizing lens 21 and surround the outer periphery of the laser gain crystal 3. In other words, the reflective sheets 41 and the first light homogenizing lens 21 are arranged alternately in a ring shape and surround the outer periphery of the laser gain crystal 3. The reflective sheets 41 are capable of reflecting the pump light at least on the wall surface facing the laser gain crystal 3.

[0062] A second light homogenizing lens 22 may be provided between the alternately arranged reflectors 4 and the first light homogenizing lens 21 and the laser gain crystal 3 , or may not be provided. Preferably, a second light homogenizing lens 22 is provided.

[0063] When the pump light emitted by the pump source 1 is irradiated onto the surface of the laser gain crystal 3, most of the pump light is absorbed by the laser gain crystal 3, a small portion of the pump light is reflected by the surface of the laser gain crystal 3, and a small portion of the pump light passes through the laser gain crystal 3. The pump light that passes through the laser gain crystal 3 and the pump light reflected by the laser gain crystal 3 are irradiated onto the reflective sheet 41 and reflected again by the reflective sheet 41, so that the re-reflected pump light is re-irradiated onto the surface of the laser gain crystal 3 and is mostly absorbed. Therefore, the reflection of the pump light by the reflective sheet 41 ensures that the pump light is absorbed by the laser gain crystal 3, thereby improving energy utilization.

[0064] It is understandable that the first light homogenizing lens is not limited to being arranged alternately with the reflective sheet. In other embodiments, the first light homogenizing lens is arranged in a ring shape and surrounds the outer periphery of the laser gain crystal, and at least two reflective sheets are arranged at intervals around the first light homogenizing lens.

[0065] In some embodiments, the second light homogenizing lens 22 surrounds the periphery of the laser gain crystal 3 , and the reflective elements 4 and the first light homogenizing lenses 21 arranged alternately surround the periphery of the second light homogenizing lens 22 .

[0066] like Figure 1-Figure 3 As shown, the second light homogenizing lens 22 is arranged in a ring shape and surrounds the outer periphery of the laser gain crystal 3 , and the reflective elements 4 and the first light homogenizing lenses 21 arranged alternately surround the outer periphery of the second light homogenizing lens 22 .

[0067] The second light homogenizing lens 22 is arranged in a ring shape so that the pump light reflected by the reflective sheet 41 passes through the second light homogenizing lens 22 again and is homogenized, thereby ensuring a homogenizing effect of the pump light.

[0068] It is understandable that the second light uniforming lens is not limited to being arranged in a ring shape. In other embodiments, there are at least two second light uniforming lenses arranged corresponding to the first light uniforming lenses.

[0069] In some embodiments, the laser gain crystal 3 is rod-shaped, the reflector 4 and the first light homogenizing lens 21 are both arc-shaped plates extending along the axial direction of the laser gain crystal 3 and bent along the circumference of the laser gain crystal 3, and the second light homogenizing lens 22 is tubular extending along the axial direction of the laser gain crystal 3.

[0070] like Figure 1-Figure 3 As shown, the laser gain crystal 3 is in the shape of a rod, preferably a round rod, extending in the left-right direction. The reflector 4 and the first light homogenizing lens 21 are both in the shape of curved plates extending in the left-right direction and curved around the left-right direction, so that the reflector 4 and the first light homogenizing lens 21 are alternately arranged in the shape of circular tubes. The second light homogenizing lens 22 is in the shape of a tube, preferably a round tube, extending along the axial direction of the laser gain crystal 3. This ensures that the pump light is evenly irradiated on the surface of the laser gain crystal 3, enabling the laser gain crystal 3 to be activated and generate laser light.

[0071] In some embodiments, the space between the second light homogenizing lens 22 and the laser gain crystal 3 is used for the passage of a cooling medium, which is light-transmissive.

[0072] like Figure 1 As shown, the tubular second light homogenizing lens 22 is used for the cooling medium to pass through, and the cooling medium contacts and exchanges heat with the laser gain crystal 3 to cool the laser gain crystal 3.

[0073] The cooling medium is light-transmissive, in other words, the cooling medium is transparent so that the pump light can pass through the cooling medium. The cooling medium is preferably, but not limited to, water.

[0074] In some embodiments, the reflector 4 further includes a connecting ring 42, which surrounds the outer circumference of the laser gain crystal 3 and is connected to the same end of at least two reflective sheets 41. The first light homogenizing lens 21 is connected between two adjacent reflective sheets 41. The pump module further includes a mounting base 5, to which the pump source 1, the connecting ring 42, at least one axial end of the second light homogenizing lens 22, and at least one axial end of the laser gain crystal 3 are all connected.

[0075] like Figure 1-Figure 3 As shown, the reflector 4 also includes a connecting ring 42, which is a ring-shaped ring in the left and right directions and surrounds the outer circumference of the laser gain crystal 3. The connecting ring 42 is connected to the left ends of the three reflective sheets 41, thereby playing the role of installing and fixing the reflective sheets 41.

[0076] The first light homogenizing lens 21 is connected between two adjacent reflective sheets 41 . Preferably, the first light homogenizing lens 21 is connected between the inner wall surfaces of two adjacent reflective sheets 41 , so as to facilitate the installation and fixation of the first light homogenizing lens 21 .

[0077] The mounting base 5 is preferably, but not limited to, a housing. The pump source 1 is disposed on the inner wall of the mounting base 5. The connecting ring 42, the left end of the second light homogenizing lens 22, and the left end of the laser gain crystal 3 are all connected to the mounting base 5, thereby fixing the pump source 1, the light homogenizing assembly 2, the laser gain crystal 3, and the reflector 4. At the same time, the housing of the mounting base 5 also serves as a light shielding device to prevent the pump light from being affected by external natural light.

[0078] like Figure 1-Figure 5(b) As shown, the laser according to the embodiment of the present invention includes the pump module according to the embodiment of the present invention.

[0079] The laser of the embodiment of the present invention adopts the pump module of the embodiment of the present invention, so the laser gain crystal is not easily damaged, so that the laser of the embodiment of the present invention has a long service life, high energy utilization and uniform gain.

[0080] In the description of the present invention, it should be understood that the terms "center", "left", "right", "top", "bottom", "inside", "outside", "axial", "radial", "circumferential", etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present invention.

[0081] Furthermore, the terms "first" and "second" are used solely for distinction and should not be understood to indicate or imply relative importance or implicitly specify the number of technical features being referred to. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one such feature. In the description of the present invention, "plurality" means at least two, such as two, three, etc., unless otherwise specifically defined.

[0082] In the present invention, unless otherwise specified or limited, the terms "installed," "connected," "connect," "fixed," etc. should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integration; mechanical connection, electrical connection, or communication; direct connection or indirect connection through an intermediate medium; internal communication between two elements or interaction between two elements, unless otherwise specified. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.

[0083] In the present invention, unless otherwise expressly specified or limited, when a first feature is "above" or "below" a second feature, it may mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediary. Furthermore, when a first feature is "above," "above," or "above" a second feature, it may mean that the first feature is directly above or diagonally above the second feature, or simply means that the first feature is at a higher level than the second feature. When a first feature is "below," "below," or "below" a second feature, it may mean that the first feature is directly below or diagonally below the second feature, or simply means that the first feature is at a lower level than the second feature.

[0084] In the present invention, the terms "one embodiment", "some embodiments", "examples", "specific examples", or "some examples" mean that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in this specification and the features of different embodiments or examples without contradiction.

[0085] Although the embodiments of the present invention have been shown and described above, it will be understood that the above embodiments are illustrative and are not to be construed as limitations on the present invention. A person skilled in the art may change, modify, replace and modify the above embodiments within the scope of the present invention.

Claims

1. A pump module, characterized in that: include: A pump source (1), a light homogenizing component (2) and a laser gain crystal (3), wherein the pump source (1) is used to emit pump light, a plurality of the pump sources (1) are arranged at intervals along the periphery of the laser gain crystal (3), the light homogenizing component (2) is arranged between the pump source (1) and the laser gain crystal (3), the light homogenizing component (2) is light-transmissive, the light homogenizing component (2) is used to allow the pump light to pass through and homogenize the pump light, and the laser gain crystal (3) is used to receive the pump light emitted by the pump source (1) and homogenized by the light homogenizing component (2); The light homogenizing component (2) comprises a first light homogenizing lens (21), the first light homogenizing lens (21) is light-transmissive, the first light homogenizing lens (21) has a convex or concave first lens unit (211), or the first light homogenizing lens (21) has a first scattering microstructure; The light homogenizing component (2) further includes a second light homogenizing lens (22), the second light homogenizing lens (22) is light-transmissive, the first light homogenizing lens (21) and the second light homogenizing lens (22) are sequentially arranged along a direction from the pump source (1) to the laser gain crystal (3), the second light homogenizing lens (22) has a convex or concave second lens unit (221), or the second light homogenizing lens (22) has a second scattering microstructure.

2. The pump module according to claim 1, wherein: The first lens units (211) are arranged in a plurality in an array, and the second lens units (221) are arranged in a plurality in an array. The widths of the first lens units (211) and the second lens units (221) are both 10 micrometers to 999 micrometers.

3. The pump module according to claim 1, wherein: The first lens unit (211) and the second lens unit (221) are one of a convex lens, a concave lens, a Fresnel lens, and a honeycomb mirror.

4. The pump module according to claim 1, wherein: The first scattering microstructure is a rough surface formed on the first light-homogenizing lens (21) by a sandblasting process or a chemical etching process, and the second scattering microstructure is a rough surface formed on the second light-homogenizing lens (22) by a sandblasting process or a chemical etching process.

5. The pump module according to claim 1, wherein: The first light homogenizing lens (21) is arranged corresponding to the pump source (1); The pump module further includes a reflector (4), the reflector (4) including a plurality of reflectors (41) arranged at intervals along the periphery of the laser gain crystal (3), the reflectors (41) and the first light-homogenizing lenses (21) being arranged alternately and surrounding the periphery of the laser gain crystal (3), the reflectors (41) being used to reflect the pump light away from the laser gain crystal (3).

6. The pump module according to claim 5, wherein: The second light-homogenizing lens (22) surrounds the outer periphery of the laser gain crystal (3), and the reflective elements (4) and the first light-homogenizing lens (21) arranged alternately surround the outer periphery of the second light-homogenizing lens (22).

7. The pump module according to claim 6, wherein: The laser gain crystal (3) is rod-shaped, the reflector (4) and the first light homogenizing lens (21) are both arc-shaped plates extending along the axial direction of the laser gain crystal (3) and bent along the circumference of the laser gain crystal (3), and the second light homogenizing lens (22) is tubular and extending along the axial direction of the laser gain crystal (3).

8. The pump module according to claim 6, wherein: The space between the second light homogenizing lens (22) and the laser gain crystal (3) is used for the passage of a cooling medium, and the cooling medium is light-transmissive.

9. The pump module according to claim 5, wherein: The reflector (4) further includes a connecting ring (42), the connecting ring (42) surrounds the outer periphery of the laser gain crystal (3), the connecting ring (42) is connected to the same end of at least two reflective sheets (41), and the first light homogenizing lens (21) is connected between two adjacent reflective sheets (41); The pump module further comprises a mounting base (5), and the pump source (1), the connecting ring (42), at least one axial end of the second light homogenizing lens (22), and at least one axial end of the laser gain crystal (3) are all connected to the mounting base (5).

10. A laser, characterized in that: include: The pump module according to any one of claims 1 to 9.

Citation Information

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