EP4308054A1 - Strahlteilungsvorrichtung, ophthalmologisches lasertherapiesystem, verfahren zum scannen eines patientenauges und verfahren zum aufteilen - Google Patents
Strahlteilungsvorrichtung, ophthalmologisches lasertherapiesystem, verfahren zum scannen eines patientenauges und verfahren zum aufteilenInfo
- Publication number
- EP4308054A1 EP4308054A1 EP22706596.8A EP22706596A EP4308054A1 EP 4308054 A1 EP4308054 A1 EP 4308054A1 EP 22706596 A EP22706596 A EP 22706596A EP 4308054 A1 EP4308054 A1 EP 4308054A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- beams
- multiplier element
- splitter
- laser
- polarizing
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F9/00—Methods or devices for treatment of the eyes; Devices for putting in contact-lenses; Devices to correct squinting; Apparatus to guide the blind; Protective devices for the eyes, carried on the body or in the hand
- A61F9/007—Methods or devices for eye surgery
- A61F9/008—Methods or devices for eye surgery using laser
- A61F9/00825—Methods or devices for eye surgery using laser for photodisruption
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F9/00—Methods or devices for treatment of the eyes; Devices for putting in contact-lenses; Devices to correct squinting; Apparatus to guide the blind; Protective devices for the eyes, carried on the body or in the hand
- A61F9/007—Methods or devices for eye surgery
- A61F9/008—Methods or devices for eye surgery using laser
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K26/00—Working by laser beam, e.g. welding, cutting or boring
- B23K26/02—Positioning or observing the workpiece, e.g. with respect to the point of impact; Aligning, aiming or focusing the laser beam
- B23K26/06—Shaping the laser beam, e.g. by masks or multi-focusing
- B23K26/064—Shaping the laser beam, e.g. by masks or multi-focusing by means of optical elements, e.g. lenses, mirrors or prisms
- B23K26/0643—Shaping the laser beam, e.g. by masks or multi-focusing by means of optical elements, e.g. lenses, mirrors or prisms comprising mirrors
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K26/00—Working by laser beam, e.g. welding, cutting or boring
- B23K26/02—Positioning or observing the workpiece, e.g. with respect to the point of impact; Aligning, aiming or focusing the laser beam
- B23K26/06—Shaping the laser beam, e.g. by masks or multi-focusing
- B23K26/067—Dividing the beam into multiple beams, e.g. multi-focusing
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B18/00—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
- A61B18/18—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by applying electromagnetic radiation, e.g. microwaves
- A61B18/20—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by applying electromagnetic radiation, e.g. microwaves using laser
- A61B2018/2035—Beam shaping or redirecting; Optical components therefor
- A61B2018/20351—Scanning mechanisms
- A61B2018/20359—Scanning mechanisms by movable mirrors, e.g. galvanometric
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B18/00—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
- A61B18/18—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by applying electromagnetic radiation, e.g. microwaves
- A61B18/20—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by applying electromagnetic radiation, e.g. microwaves using laser
- A61B2018/208—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by applying electromagnetic radiation, e.g. microwaves using laser with multiple treatment beams not sharing a common path, e.g. non-axial or parallel
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F9/00—Methods or devices for treatment of the eyes; Devices for putting in contact-lenses; Devices to correct squinting; Apparatus to guide the blind; Protective devices for the eyes, carried on the body or in the hand
- A61F9/007—Methods or devices for eye surgery
- A61F9/008—Methods or devices for eye surgery using laser
- A61F2009/00897—Scanning mechanisms or algorithms
Definitions
- Beam splitting device ophthalmic laser therapy system, method of scanning a patient's eye and method of splitting
- the invention relates to a beam splitting device, an ophthalmic laser therapy system, a method for scanning a patient's eye and a method for splitting an input laser beam.
- the invention is based on the object of demonstrating a beam splitting device, an ophthalmological laser therapy system or a method for scanning a patient's eye or a method for splitting a laser input beam, which allows technically simple and essentially without power losses, technically simply several To generate laser beams from a laser beam or to scan multiple laser beams generated from a laser beam over the patient's eye.
- a beam splitting device according to claim 1 or an ophthalmological laser therapy system according to claim 15 or a method for Scanning a patient's eye according to claim 17 or a method for splitting a laser input beam into four laser output beams according to claim 20.
- the object is achieved by a beam splitting device for generating a plurality of laser output beams from a laser input beam, the beam splitting device having a first beam multiplier element for generating two intermediate beams from the laser input beam, the first beam multiplier element having a first polarizing beam splitter, a second polarizing beam splitter and at least one first deflection element for deflecting an intermediate beam by a predetermined angle, the beam splitting device being designed such that when the laser input beam is radiated onto the first polarizing beam splitter of the first beam multiplier element, the laser input beam into the first intermediate beam and splitting the second intermediate beam by means of the first polarizing beam splitter of the first beam multiplier element, the two intermediate beams spanning the x-y plane of the two te intermediate beam is deflected by the first deflection element by a predetermined angle, in particular approximately 90° or approximately 180°, and the first intermediate beam and the second intermediate beam are radiated onto the second polarizing beam splitter of the first beam multiplier element in
- a plurality of laser beams or laser output beams (these can also be referred to as intermediate beams) can be generated in a technically simple manner from one laser beam.
- the laser beams or laser output beams or intermediate beams can run parallel to one another or have an angle to one another.
- the beam splitting device requires little space.
- essentially no intensity or power of the input laser beam is lost in the beam splitting device.
- All generated intermediate beams or partial beams are or contribute to the laser output beams.
- the beam splitting device has a very simple technical design and is of compact design.
- the intermediate beams can be the laser output beams.
- an ophthalmic laser therapy system for treating a patient's eye
- the laser therapy system having a laser generating device for emitting a laser input beam, a beam splitting device for generating two or four laser output beams from the laser input beam as described above, and a scanning device for moving of the laser output beams over the patient's eye.
- the advantage of this is that a plurality of laser beams or laser output beams, which can be moved over the patient's eye, can be generated from one laser beam in a technically simple manner.
- the laser beams or laser output beams can run parallel to one another or have an angle to one another.
- the ophthalmological laser therapy system requires little space. Also, essentially no intensity or power of the laser input beam is lost in the beam splitting device. All generated intermediate beams or partial beams are or contribute to the laser output beams of the ophthalmological laser therapy system.
- the object is achieved by a method for scanning a patient's eye with two or four laser output beams, the method comprising the steps of: irradiating a laser input beam into a beam splitting device as described above; emitting two or four laser output beams from the beam splitting device; and scanning the laser output beams over at least a portion of the patient's eye.
- the advantage of this is that, in a technically simple manner, a plurality of laser beams or laser output beams can be generated from one laser beam and moved over the patient's eye.
- the laser beams can run parallel to one another or have an angle to one another.
- the method requires only little volume or space to carry out.
- the intensity or power of the laser output beams relative to the laser input beam is also essentially not reduced, since all intermediate beams or partial beams that are generated contribute to the laser output beams.
- the object is achieved by a method for splitting a laser input beam into two laser output beams, the method comprising the steps of: irradiating a laser input beam onto a first polarizing beam splitter of a first beam multiplier element; splitting the laser input beam into a first intermediate beam and a second intermediate beam using the first polarizing beam splitter of the first beam multiplier element; Deflecting the second intermediate beam in the first beam multiplier element by a predetermined angle, in particular approximately 90° or approximately 180°; and beaming the first intermediate beam and the second intermediate beam onto a second polarizing beam splitter of the first beam multiplier element in such a way that the first intermediate beam and the second intermediate beam are offset essentially parallel to one another or with a predetermined angular difference, in particular less than 3 mrad, preferably less than 1, 4 mrad, more preferably less than 0.6 mrad, emerge from the second polarizing beam splitter of the first beam multiplier element.
- One advantage of this is that a plurality of laser output beams (the intermediate beams can be the laser output beams) can be generated in a technically simple manner from a laser input beam. Only a small amount of space or space is required for the process. In addition, only a small amount of power or intensity of the laser input beam is lost compared to the laser output beams with this method.
- the first polarizing beam splitter in the first beam multiplier element and/or in the second beam multiplier element, is at a predetermined angle relative to the second polarizing beam splitter about an axis called the z-axis and running perpendicular to the xy plane approximately 90°, rotated, with the distance between the first polarizing beam splitter and the first deflection element being larger or smaller than the distance between the second polarizing beam splitter and the first deflecting element.
- the advantage here is that when the deflection element is not tilted, the intermediate beams or the laser output beams run parallel to the laser input beam. In addition, this makes it technically easy to achieve that the intermediate beams span a plane in which the laser input beam lies.
- the first polarizing beam splitter is opposite the second polarizing beam splitter about an axis, called the z-axis and perpendicular to the xy plane, at an angle other than 90° in the range of about 90 ° ⁇ 3 mrad / 2, in particular in the range of approx. 90° ⁇ 1.4 mrad / 2, preferably in the range of approx.
- the deflection element comprises a prism, in particular a triple prism.
- the prism can be a 90° prism (with two reflections).
- a tilting of the first polarizing beam splitter and/or the second polarizing beam splitter, e.g. about the z-axis, can be used to adjust the beam angle of the intermediate beams or laser output beams.
- the first beam multiplier element and/or the second beam multiplier element each has a second deflection element, the deflection surface of the first deflection element running essentially parallel to the deflection surface of the second deflection element, the distance between the first polarizing beam splitter and the first deflection element is larger or smaller than the distance between the second polarizing beam splitter and the second deflection element.
- the first beam multiplier element and/or the second beam multiplier element each has a second deflection element, with a first deflection surface of the first deflection element running non-parallel to a second deflection surface of the second deflection element and at an angle in the range of up to 1.5 mrad, in particular up to 0.7 mrad, preferably up to 0.3 mrad.
- the advantage here is that technically particularly output beams can easily be generated that are not parallel to each other, but have a small angle to each other.
- the first polarizing beam splitter and the second polarizing beam splitter are arranged adjacent to one another.
- the advantage of this is that the beam splitting device can be designed to be even more compact or space-saving.
- the beam splitter element or the beam splitter device can, for example, be composed of two (or more) glass prisms, e.g. glued together.
- the glass prisms can be 90° prisms. Distances between glass prisms can be designed as glass paths.
- the polarizations of the first intermediate beam and/or partial beam and of the second intermediate beam and/or partial beam are each rotated by means of a 1/2 plate or two 1/4 plates before the two intermediate beams or partial beams onto the second polarizing meet beam splitter.
- a delay plate is arranged between the first beam multiplier element and the second beam multiplier element.
- the delay plate comprises a 1/2 plate or a 1/4 plate.
- the beam splitting device is particularly reliable and inexpensive. It is also possible, for example, if the two beam multiplier elements are arranged rotated by 90° about the x-axis and the laser input beam has a linear polarization at an angle of 45° to that of a first plane, to have a first intermediate beam and a second generate intermediate beam, wherein before the l/2 plate the first intermediate beam has a linear polarization in a first direction and the second intermediate beam has a linear polarization in a second direction, the first direction being perpendicular to the second direction, and after the l/2 -Tile the first intermediate beam has a linear polarization of +45° with respect to the first direction and the second intermediate beam has a linear polarization of -45° with respect to the second direction.
- the deflection surface of the first and/or the second deflection element of the first beam multiplier element and/or the first and/or second deflection element of the second beam multiplier element and/or the splitting surface of the second beam splitter of the first beam multiplier element and/or the second beam splitter of the second beam multiplier element is tilted about an axis parallel to the x-axis at a predetermined angle relative to the x-y plane such that the output beams do not lie in the x-y plane.
- the advantage of this is that the intermediate beams or the laser output beams are tilted in the z-direction or are tilted by the angle F out of the x-y plane.
- the beam splitting device is designed in such a way that the distance between the intermediate beams and/or the laser output beams can be kept essentially constant on a plane perpendicular to the x-axis. As a result, the patient's eye can be treated particularly precisely and reliably.
- the beam splitting device is designed in such a way that the distance between the intermediate beams and/or the laser output beams to one another immediately after the second beam multiplier element on a plane essentially perpendicular to the x-axis is less than 10 times, in particular less than is four times the largest diameter of the laser output beams.
- the advantage of this is that particularly small areas of the patient's eye can be treated reliably.
- the laser output beams do not lie in a straight line in a plane perpendicular to the x-axis.
- An advantage of this is that large areas of the patient's eye can be treated within a short time.
- the laser output beams can be circular, elliptical, hexagonal, rectangular, square-shaped or may be arranged at the corners of another polygon. In particular, it is possible for only two of the four laser output beams to lie on a common plane.
- the laser therapy system is designed in such a way that the distances between the laser output beams from one another essentially do not change when the laser output beams are moved over the patient's eye. As a result, the patient's eye can be examined and/or treated particularly precisely and reliably.
- the laser output beams are moved over the patient's eye in particular in such a way that the distances between the laser output beams do not change when the laser output beams are moved over the patient's eye .
- One advantage of this is that the patient's eye is examined and/or treated particularly precisely and reliably.
- the laser output beams lie in a plane that runs perpendicular to the direction of the laser input beam, not on a straight line.
- the advantage here is that large areas of the patient's eye can be treated within a short time.
- the laser output beams may be arranged in a circular, elliptical, hexagonal, rectangular, square, or may be arranged at the corners of another polygon.
- the method further comprises the steps of: radiating the two intermediate beams onto a first polarizing beam splitter of a second beam multiplier element; Splitting the two intermediate beams into a first partial beam and a second partial beam by means of the first polarizing beam splitter of the second beam multiplier element; Deflecting the second partial beams in the second beam multiplier element by a predetermined angle, in particular approximately 90° or approximately 180°; and radiating the first sub-beams and the second sub-beams onto a second polarizing beam splitter second beam multiplier element such that four laser output beams essentially parallel to each other or with a predetermined angular difference, in particular less than 3 mrad, preferably less than 1.4 mrad, particularly preferably less than 0.6 mrad, from the second polarizing beam splitter of the second Leak beam multiplier element.
- This method produces four output beams from one input beam in a small volume.
- the second beam multiplier element is relative to the first beam multiplier element about an axis parallel to the laser input beam, called the x-axis, by a predetermined angle, in particular about 45° or about 90 °, arranged rotated.
- a predetermined angle in particular about 45° or about 90 °, arranged rotated.
- a 1/2 plate or a 1/4 plate is arranged between the first beam multiplier element and the second beam multiplier element.
- the advantage of this is that the polarization of the intermediate beams can be changed in a technically simple manner.
- the mutually tilted partial beams are circularly polarized to the right and left by the 1/4 plate.
- the orientation of the second beam multiplier element is irrelevant to the input polarization.
- the intermediate beams can be the laser output beams. It is also conceivable that the intermediate beams or the laser output beams are again input beams for a further beam multiplier element.
- FIG. 3 shows a schematic side view of a second embodiment of the beam splitting device according to the invention.
- FIG. 5 shows a schematic perspective view of a third embodiment of the beam splitting device according to the invention.
- Fig. 6 is a schematic side view of a third embodiment of a
- Fig. 7 is a schematic side view of a fourth embodiment of a
- Fig. 8 is a schematic side view of a fifth embodiment of a
- Fig. 9 is a schematic side view of a sixth embodiment of a
- Fig. 11 is a schematic side view of an eighth embodiment of a
- FIG. 12 shows a schematic side view of a ninth embodiment of a beam multiplier element
- FIG. 13 shows a schematic side view of a tenth embodiment of a beam multiplier element
- FIG. 14 shows a schematic side view of an eleventh embodiment of a beam multiplier element
- 16 shows a schematic side view of a thirteenth embodiment of a beam multiplier element.
- Fig. 1 shows a schematic view of a first embodiment of the beam splitting device 10 according to the invention.
- Fig. 2 shows a schematic perspective view of the beam splitting device 10 from Fig. 1.
- the beam splitting device 10 is designed to generate two intermediate beams 75, 76 from a laser input beam 60. Four laser output beams 90-93 are generated from the two intermediate beams 75, 76 by the beam device and output or radiated.
- the beam splitting device 10 has a first beam multiplier element 20 and a second beam multiplier element 40 .
- the first beam multiplier element 20 has a first polarizing beam splitter 22 , a deflection element 26 and a second polarizing beam splitter 24 .
- the second beam multiplier element 40 has a first polarizing beam splitter 42 , a deflection element 46 and a second polarizing beam splitter 44 .
- the first beam multiplier element 20 can thus be built or designed in the same way as the second beam multiplier element 40.
- the first embodiment of the beam splitting device 10 thus has a first embodiment of the beam multiplier element twice.
- the coordinate system used in this description uses three mutually perpendicular axes or directions.
- the x-axis is the axis that runs along the input laser beam 60 (from left to right in Figure 1).
- a z-axis runs perpendicular to this (in Fig. 1 out of the plane of the drawing), with the first intermediate beam 75 and the second intermediate beam 76 spanning a plane after the first polarizing beam splitter 22 of the first beam multiplier element 20, which runs perpendicular to the z-axis.
- the y-axis (running from bottom to top in FIG. 1) is perpendicular to the x-axis and perpendicular to the z-axis.
- the second intermediate beam 76 after the first polarizing beam splitter 22 of the first beam multiplier element 20 runs in the y-direction or parallel to the y-direction if the laser input beam 60 strikes the splitter surface 23 of the first polarizing beam splitter 22 of the first Beam multiplier element 20 radiates.
- the second beam multiplier element 40 of the first beam multiplier element 20 can be arranged rotated about the x-axis or an axis parallel to the x-axis by 45° or 90° relative to the first beam multiplier element 20 .
- the input laser beam 60 is linearly polarized.
- the laser input beam 60 has a polarization that forms an angle of 45° to the plane of the drawing of FIG.
- the polarization components of the laser input beam 60 in front of the first polarizing beam splitter 22 of the first beam multiplier element 20 are represented by two different lines 61 , 62 .
- only an input laser beam 60 is directed onto the first polarizing beam splitter 22 of the first beam multiplier element 20 .
- the laser input beam 60 comes from a laser source 5.
- the first polarizing beam splitter 22 of the first beam multiplier element 20, the second polarizing beam splitter 24 of the first beam multiplier element 20, the first polarizing beam splitter 42 of the second beam multiplier element 40 and/or the second polarizing beam splitter 44 of the second beam multiplier element 40 may comprise or be a pole cube.
- a part of the laser beam or a first partial beam or intermediate beam 75 is not changed in its direction when passing through the first polarizing beam splitter 22 of the first beam multiplier element 20, while the other second intermediate beam 76 or partial beam is deflected by 90°, in Fig. 1 up.
- the first polarizing beam splitter 22 in the first beam multiplier element 20 splits the laser input beam 60 into a first intermediate beam 75 which passes through the first polarizing beam splitter 22 unchanged and a second intermediate beam 76 which is deflected or deflected by 90°.
- the linear polarization of the first intermediate beam 75 is perpendicular to the linear polarization of the second intermediate beam 76.
- the second intermediate beam 76 is directed onto a deflection element 26 in the form of a prism.
- the prism may be a 90° prism with the second intermediate ray 76 entering through the hypotenuse of the prism.
- the second intermediate ray 76 is then deflected by 90° at a first cathetus of the prism and then, after covering a distance, is deflected or deflected by another 90° at the second cathetus of the prism, so that the second intermediate ray 76 approaches the first intermediate ray 75 again and passes through the hypotenuse of the prism.
- the second intermediate beam 76 now strikes the second polarizing beam splitter 24.
- the second polarizing beam splitter 24 allows the first intermediate beam 75 coming from the first polarizing beam splitter 22 to pass through unchanged, while the second intermediate beam 76 coming from the deflection element 26 is deflected at an angle of 90°.
- the two beams now run exactly or essentially in the x-direction. They can run parallel to one another--but offset--if the deflection element 26 is arranged in a plane perpendicular to the z-axis, ie in the plane of the drawing in FIG.
- the first polarizing beam splitter 22 can be arranged at an angle of 90° rotated about the z-axis with respect to the second polarizing beam splitter 24 .
- a delay plate 50 can be arranged between the first beam multiplier element 20 and the second beam multiplier element 40 .
- the delay plate 50 is optional.
- the delay plate 50 can be a so-called 1/2 plate or a 1/2 plate.
- the delay plate 50 can be arranged and designed in such a way that the direction of polarization of the two intermediate beams 75, 76 is rotated by 45°.
- the intermediate beams 75,76 have a linear polarization in the y-direction/direction of the y-axis or in the z-direction/direction of the z-axis.
- the intermediate beams 75, 76 have a linear polarization of +45° with respect to the y-axis and ⁇ 45° with respect to the z-direction.
- the second beam multiplier element 40 can be constructed in the same way as the first beam multiplier element 20 .
- the second beam multiplier element 40 is rotated by 90° relative to the first beam multiplier element 20 about the x-axis or the direction of the intermediate beams 75, 76.
- the second beam multiplier element 40 is tilted (rotated) backwards by 90°.
- a retardation plate 50 is arranged between the first beam multiplier element 20 and the second beam multiplier element 40 .
- the second beam multiplier element 40 can be rotated by 45° about the x-axis relative to the first beam multiplier element 20 .
- no retardation plate 50 can be arranged between the first beam multiplier element 20 and the second beam multiplier element 40 .
- the splitting of the intermediate beams 75, 76 into partial beams takes place in the second beam multiplier element 40 exclusively orthogonal to the plane of the drawing in FIG 75, 76 of the first beam multiplier element 20 is spanned.
- a particularly efficient, since decoupled, adjustment option for the offset of the laser output beams 90-93 of the second beam multiplier element 40 is achieved by moving the deflection element 26 of the first beam multiplier element 20 and the deflection element 46 of the second beam multiplier element 40.
- the offset between the laser output beams 90-93 of the second beam multiplier element 40 can be varied or adjusted simply by shifting the two deflection elements 26, 46 with respect to the x/y plane.
- the intermediate beams 75, 76 which have left the first beam multiplier element 20, impinge on a first polarizing beam splitter 42 of the second beam multiplier element 40, which consists of an intermediate beam 75, 76 and two partial beams 80, 81, 85, 86, i. a total of four partial beams or intermediate beams, generated with mutually different polarization alignments.
- Two first partial beams 80, 81 pass through the first polarizing beam splitter 42 of the second beam multiplier element 40 without changing direction and two second partial beams 85, 86 are deflected by the first polarizing beam splitter 42 by 90°; in Fig. 1 into the plane of the drawing.
- the deflected second partial beams 85, 86 are deflected by a deflection element 46 by 180° or twice by 90°.
- the two deflected second partial beams 85, 86 then strike the second polarizing beam splitter 42 of the second beam multiplier element 40. Here they are again deflected by 90°.
- the points at which the second partial beams 85, 86 meet the splitter surface 25 of the second polarizing beam splitter 42 typically differs from the points at which the first partial beams 80, 81 pass through the splitter surface 25 of the second polarizing beam splitter 44.
- the four partial beams 80, 81, 85, 86 or the four laser output beams 90-93 can run parallel to one another—but offset—if the polarizing beam splitters 22, 42 of the first beam multiplier element 20 and of the second beam multiplier element 40 are opposite to the x /y plane or the plane of the drawing of FIG. 1 are not tilted and the deflection elements 26, 46 are not tilted relative to the plane of the drawing of FIG.
- the four laser output beams 90-93 are again laser input beams for a further beam multiplier element 20, so that four laser input beams 60 produce eight laser output beams.
- the delay plate 50 need not be present. If there is no delay plate 50 between the first beam multiplier element 20 and the second beam multiplier element 40, the second beam multiplier element 40 is rotated by 45° relative to the first beam multiplier element 20 about the x-axis or the direction of the intermediate beams 75, 76.
- the two intermediate beams 75, 76 that the first beam multiplier element 20 outputs are linearly polarized perpendicular to each other. If the deflection element 26 or the prism 26 of the first beam multiplier element 20 is slightly offset, the intermediate beams 75, 76 have a (small) offset in the xy plane. This means that the intermediate beams 75, 76 run parallel to one another in the plane spanned by the x-axis and the y-axis.
- the intermediate beams 75, 76 shown in FIG. 1 lie in or parallel to the xy plane; they are offset in the y direction.
- an offset of the intermediate beams 75, 76 in the z-direction can also be implemented.
- the splitter surfaces 23, 25 of the first polarizing beam splitter 22 and the second polarizing beam splitter 24 of the first beam multiplier element 20 are not arranged at an angle of 90° to one another about the z-axis and/or the splitter surfaces of the first polarizing beam splitter 42 and the second polarizing beam splitter 44 of the second beam multiplier element 40 are not arranged at an angle of 90° to one another about the z-axis.
- FIG. 3 shows a schematic side view of a second embodiment of the beam splitting device according to the invention.
- FIG. 4 shows a schematic perspective view of the beam splitting device from FIG. 3.
- the second embodiment of the beam splitting device 10 has a second embodiment of the beam multiplier element 20, 40 twice.
- the splitter surfaces of the first polarizing beam splitter 22 and the second polarizing beam splitter 24 of the first beam multiplier element 20 are not arranged at an angle of 90° to one another around the z-axis.
- the splitting surfaces of the first polarizing beam splitter 42 and the second polarizing beam splitter 44 of the second beam multiplier element 40 are not arranged at an angle of 90° to one another about the z-axis.
- the intermediate beams and also the output beams do not run parallel to one another in the xy plane, which corresponds to the drawing plane of FIG. 3 or FIG. 4 .
- the second beam splitter 24, 44 is tilted or tilted counterclockwise compared to the position in FIG. 1 or FIG. 2.
- the tilt is only about 0.3 mrad to about 1.5 mrad or even less than 0.3 mrad compared to a 90° angle of the two splitter surfaces of the two beam splitters 22, 24 of the same beam multiplier element to one another.
- the angle of the two splitter surfaces of the two beam splitters 22, 24 of the same beam multiplier element to one another is usually in the range of approx. 90° ⁇ 1.5 mrad. in particular in the range of approx. 90° ⁇ 0.7 mrad, preferably in the range of approx.
- the beams are not emitted in different directions, but run parallel to one another or one above the other.
- the angle between the intermediate beams 75, 76 is determined by the tilt angle a of the deflection element 26, 46 about the x-axis or parallel to the x-axis and the angular difference between the two splitter surfaces 23, 25 of the first polarizing beam splitter 22, 42 and the second polarizing beam splitter 24, 44 at 90°; at an angle of 90° between the splitter surface 23 of the first polarizing beam splitter 22, 24 and the splitter surface 25 of the second polarizing beam splitter 24, 44, the angle between the intermediate beams 75, 76 is not directly or immediately through the first polarizing beam splitter 22, 42 and affects the second polarizing beam splitter 24,44.
- the four laser output beams 90-93 do not run parallel to one another, but instead the laser output beams 90-93 are at an angle to one another.
- the laser output beams 90-93 diverge to the right in FIG.
- the deflection element 26, 46 of the first beam multiplier element 20 and/or of the second beam multiplier element 40 can comprise or be a triple prism. In this case, a deviation of the angle of the two pole splitter surfaces or splitter surfaces 23, 25 of the first polarizing beam splitter 22, 42 and the second polarizing beam splitter 24, 44 about the z-axis or parallel to the z-axis of 90° would result in a Beam angle adjustment or an adjustment of the angle between the intermediate beams 75, 76 lead.
- the delay plate 50 need not be present. If there is no delay plate 50 between the first beam multiplier element 20 and the second beam multiplier element 40, the second beam multiplier element 40 is rotated by 45° relative to the first beam multiplier element 20 about the x-axis or the direction of the intermediate beams 75, 76.
- the two intermediate beams 75, 76, the first Beam multiplier element 20 outputs are linearly polarized perpendicular to each other. If the deflection element 26 or the prism 26 of the first beam multiplier element 20 is tilted slightly, for example approx. 0.1 mrad to approx. 0.8 mrad, about the x-axis with respect to the plane of the drawing in FIG.
- the intermediate beams 75, 76 shown in FIG. 3 lie in or parallel to the x-y plane and are at an angle to one another in this plane.
- Angular splitting of the intermediate beams 75, 76 in the x-z plane can also be realized by rotating the deflection element 26 and/or a polarizing beam splitter 22, 24 about the x-axis.
- FIG. 5 shows a schematic perspective view of a third embodiment of the beam splitting device 10 according to the invention.
- the third embodiment of the beam splitting device 10 has a second embodiment of the beam multiplier element 20, 40 twice.
- the third embodiment of the beam splitting device 10 differs from the second embodiment of the beam splitting device 10 in that a 1/4 plate is arranged between the first beam multiplier element 20 and the second beam multiplier element 40 and the two beam multiplier elements 20, 40 do not face each other around the x-axis are tilted to each other.
- the partial beams that are tilted relative to one another are circularly polarized to the right and left by the 1/4 plate 50 .
- the orientation of the second beam multiplier element 40 is irrelevant to the input polarization.
- the orientation or alignment of the second beam multiplier element 40 relative to the first beam multiplier element 20 thus only determines the geometry of the four output beams relative to one another.
- the tilting (ie deviation from an angle of exactly 90° to one another around the z-axis) of the splitter surface of the respective second beam splitter 24 relative to the splitter surface of the respective first beam splitter 22 differs in each case.
- the tilting of the splitter surface of the first beam splitter 22 relative to the splitter surface of the second beam splitter 24 of the first beam multiplier element is 2 mrad and the tilting of the splitter surface of the first beam splitter 42 relative to the second beam splitter 44 of the second beam multiplier element is 1 mrad.
- the angle of the splitter surfaces in the first beam multiplier element to one another is, for example, 90°+1 mrad, while the angle of the splitter surfaces in the second beam multiplier element is, for example, 90°+0.5 mrad.
- the tilting in the second beam multiplier element can only be half as great as in the first beam multiplier element.
- the tilting angles are also exaggerated here for the sake of clarity and are not shown to scale.
- the two beam multiplier elements 20, 40 are designed as in the first embodiment.
- the partial beams, which are offset parallel to one another, are circularly polarized to the right and left by the 1/4 plate.
- the mutually tilted intermediate beams 75, 76 can be circularly polarized to the right or left by the 1/4 plate.
- the orientation of the second beam multiplier element 40 is irrelevant to the input polarization.
- the position of the output beams 90-93 relative to one another can be changed by rotating the second beam multiplier element 40 about the x-axis.
- FIG. 6 shows a schematic side view of a third embodiment of a beam multiplier element 20.
- the first, second or third embodiment of the beam splitting device 100 may alternatively or in addition to the first or second embodiment of a beam multiplier element comprise the third embodiment of a beam multiplier element.
- the polarizing beam splitters 22, 24 are not polarization splitter cubes, but each are polarization splitter plates.
- the two polarizing beam splitters 22, 24 and the splitter surfaces have a Angles to one another of not equal to 90° in the range of approx. 90° ⁇ 1.5 mrad, in particular in the range of approx. 90° ⁇ 0.7 mrad, preferably in the range of approx. 90° ⁇ 0.3 mrad.
- two intermediate beams 75, 76 (which can also be the laser output beams) are generated, which emit in different directions from the second splitter surface.
- the first or second or third embodiment of the beam splitting device 10 may comprise the fourth embodiment of a beam multiplier element as an alternative or in addition to the first, second and third embodiment of a beam multiplier element.
- the splitter surfaces in the fourth embodiment are at an angle of 90° to one another.
- the splitter surfaces are offset from one another, i.e. the distance between the first splitter surface of the first polarizing beam splitter 22 and the deflection element 26 in the y-direction is greater or smaller than the distance between the second splitter surface of the second polarizing beam splitter 24 and the deflection element 26 in y direction.
- the two intermediate beams 75, 76 (which can also be the laser output beams) are offset parallel to one another.
- FIG. 8 shows a schematic side view of a fifth embodiment of a beam multiplier element 20.
- the first or second or third embodiment of the beam splitting device 10 may alternatively or in addition to the first, second, third and fourth embodiment of a beam multiplier element comprise the fifth embodiment of a beam multiplier element.
- the beam multiplier element 20 has two deflection elements 26, 27.
- the two deflection elements 26, 27 can each be a triangular prism when viewed from the side.
- a first intermediate beam 75 after the first polarizing beam splitter 22 runs in the direction of the input beam 60.
- a second intermediate beam 76 after the first polarizing beam splitter 22 runs at an angle of 90° to the first intermediate beam 75.
- the two intermediate beams 75, 76 strike the second polarizing beam splitter 24.
- the first intermediate beam 75 then leaves the Beam multiplier element 20 at an angle of 90° to the input beam 60.
- the second intermediate beam 76 exits at a small angle, ie less than eg 3 mrad, in particular less than 1.4 mrad, preferably less than 0.6 mrad, to the first intermediate beam 75 the beam multiplier element 20.
- the first deflection element 26 is tilted relative to the second deflection element 27 about the z-axis.
- the two deflection surfaces of the two deflection elements 26, 27 do not run parallel to one another, but have an angle in the range of approximately ⁇ 1.5 mrad, in particular in the range of approximately ⁇ 0.7 mrad, preferably in the range of approximately ⁇ 0 .3 mrad, up.
- Fig. 9 shows a schematic side view of a sixth embodiment of a beam multiplier element 20.
- the first or second or third embodiment of the beam splitting device 10 can comprise the sixth embodiment of a beam multiplier element as an alternative or in addition to the first, second, third, fourth and fifth embodiment of a beam multiplier element.
- the sixth embodiment of the beam multiplier element 20 differs from the fifth embodiment of the beam multiplier element in that the two deflection surfaces of the two deflection elements 26, 27 run parallel to one another.
- the deflection surfaces of the two deflection elements 26, 27 or the two deflection elements 26, 27 are offset from one another, i.e. the distance between the first splitter surface of the first polarizing beam splitter 22 and the first deflection element 26 in the y-direction is greater or less than the distance between the second splitter surface of the second polarizing beam splitter 24 and the deflection element 27 in the x-direction.
- the two intermediate beams 75, 76 (which can be the laser output beams) are offset parallel to one another.
- Fig. 10 shows a schematic side view of a seventh embodiment of a beam multiplier element 10.
- the first or second or third embodiment of the beam splitting device can comprise the seventh embodiment of a beam multiplier element as an alternative or in addition to the first, second, third, fourth, fifth and sixth embodiment of a beam multiplier element.
- the seventh embodiment is similar to the fifth embodiment, the difference being that between the first deflection element 26 and the second polarizing beam splitter 24 a l/2 plate is arranged and between the first polarizing beam splitter 22 and the second deflection element 27 a l/2 plate is arranged.
- the second intermediate beam 76 which was deflected by 90° by the first polarizing beam splitter 22, passes through the second polarizing beam splitter 24 unchanged, while the first intermediate beam 75 is deflected by the second polarizing beam splitter 24 by 90°.
- the first intermediate beam 75 then leaves the beam multiplier element 20 parallel to the input beam 60.
- the two deflection surfaces run parallel to one another.
- the deflection surfaces of the two deflection elements 26, 27 are offset from one another, i.e. the distance between the first splitter surface of the first polarizing beam splitter 22 and the deflection element 26 in the y-direction is greater or smaller than the distance between the second splitter surface of the second polarizing beam splitter 22 and the deflection element 27 in the x-direction.
- the two intermediate beams 75, 76 are offset parallel to one another.
- Fig. 11 shows a schematic side view of an eighth embodiment of a beam multiplier element 20.
- the first or second or third embodiment of the beam splitting device can alternatively or in addition to the first, second, third, fourth, fifth, sixth and seventh embodiment of a beam multiplier element, the eighth embodiment of a beam multiplier element include.
- the eighth embodiment is similar to the sixth embodiment, the difference being that a 1/2 plate is arranged between the first deflection element 26 and the second polarizing beam splitter 24 and a 1/2 plate is arranged between the first polarizing beam splitter 22 and the second deflecting element 27 l/2 plate is arranged.
- the second intermediate beam 76 which was deflected by the first polarizing beam splitter 22 by 90 °, passes unchanged through the second polarizing beam splitter 24, while the first intermediate beam 75 from the second polarizing beam splitter 24 is deflected by 90 °. Both intermediate beams 75, 76 then leave the beam multiplier element 20 parallel to the input beam 60 and parallel to one another.
- the first deflection element 26 is tilted about the z-axis relative to the second deflection element 27 .
- the two deflection surfaces of the two deflection elements 26, 27 do not run parallel to one another, but have an angle in the range of approximately ⁇ 1.5 mrad, in particular in the range of approximately ⁇ 0.7 mrad, preferably in the range of approximately ⁇ 0 .3 mrad, up.
- Fig. 12 shows a schematic side view of a ninth embodiment of a beam multiplier element 20.
- the first or second or third embodiment of the beam splitting device 10 can alternatively or in addition to the first, second, third, fourth, fifth, sixth, seventh and eighth embodiment of a beam multiplier element the ninth Include embodiment of a beam multiplier element.
- the beam multiplier element 20 comprises two glass prisms which are arranged with their splitter surfaces 23, 25 on one another, e.g. glued or the like. One of the two deflection surfaces or mirror surfaces runs parallel to the dividing surface 23, 25 or the dividing surfaces 23, 25 Divider surfaces 23, 25 aligned.
- the tilt can be, for example, approximately 1.5 mrad, in particular approximately 0.7 mrad, preferably 0.3 mrad, or less.
- the two polarizing beam splitters 22, 24 of the beam multiplier element 20 are arranged adjacent to one another.
- the splitter surfaces 23, 25 of the two polarizing beam splitters 22, 24 thus run parallel to one another.
- the deflection surfaces comprise or a 1/4 plate is arranged on each of the deflection surfaces, with the respective intermediate beam 75, 76 passing through the respective 1/4 plate twice during the deflection or reflection through 90°. This results in the effect of a 1/2 plate. This causes a rotation of the polarization of the respective intermediate beam 75, 76 by 90° during the deflection.
- the two intermediate beams 75, 76 thus pass through the pole splitter surface once in transmission and once in reflection.
- the first intermediate beam 75 leaves the beam multiplier element 20 parallel to the input beam 60.
- Fig. 13 shows a schematic side view of a tenth embodiment of a beam multiplier element 20.
- the first or second or third embodiment of the beam splitting device can alternatively or in addition to the first, second, third, fourth, fifth, sixth, seventh, eighth and ninth embodiment of a beam multiplier element the tenth embodiment of a beam multiplier element.
- the tenth embodiment differs from the ninth embodiment in that the deflection surfaces are aligned parallel to one another and parallel to the splitter surface 23 or the splitter surfaces 23, 25, but the distances between the deflection surfaces and the splitter surfaces 23, 25 are unequal. This means that the distance from the first splitter surface 23 of the first polarizing beam splitter 22 to the first deflection surface of the first deflection element 26 is greater or smaller than the distance from the splitter surface 25 of the second polarizing beam splitter 24 to the second deflection surface of the second deflection element 27.
- the intermediate beams 75, 76 are emitted from the beam multiplier element 20 in parallel offset to one another and parallel to the input beam 60.
- Fig. 14 shows a schematic side view of an eleventh embodiment of a beam multiplier element 20.
- the first or second or third embodiment of the beam splitting device can alternatively or in addition to the first, second, third, fourth, fifth, sixth, seventh, eighth, ninth or tenth embodiment of a Beam multiplier element comprise the eleventh embodiment of a beam multiplier element.
- the eleventh embodiment differs from the ninth embodiment in that there are no 1/2 plates. Thus, the polarization of the two partial beams is not changed. Consequently, an intermediate beam 75 leaves the beam multiplier element at an angle of 90° to the input beam 60.
- the other intermediate beam 76 has a small angle, eg less than 3 mrad, or less than 1.4 mrad, or less than 0.3 mrad, to the other intermediate beam 75.
- the first or second or third embodiment of the beam splitting device 10 can alternatively or in addition to the first, second, third, fourth, fifth, sixth, seventh, eighth, ninth, tenth or eleventh Embodiment of a beam multiplier element comprise the twelfth embodiment of a beam multiplier element.
- the twelfth embodiment differs from the tenth embodiment in that there are no 1/2 plates. Thus, the polarization of the two partial beams is not changed. Consequently, the two intermediate beams 75, 76 each leave the beam multiplier element 20 at an angle of 90° to the input beam 60.
- Fig. 16 shows a schematic side view of a thirteenth embodiment of a beam multiplier element 20.
- the first or second or third embodiment of the beam splitting device 10 can alternatively or in addition to the first, second, third, fourth, fifth, sixth, seventh, eighth, ninth, tenth, eleventh or twelfth embodiment of a beam multiplier element comprise the thirteenth embodiment of a beam multiplier element.
- the thirteenth embodiment of a beam multiplier element 20 generates three intermediate beams from an input beam 60 .
- the first polarizing beam splitter 22 generates two intermediate beams 75, 76.
- the intermediate beam 76 is deflected by about 180° on the deflection element 26 and on the splitter surface of a 50:50 beam splitter 95, and is superimposed on the intermediate beam 75 as described in the second embodiment (with a angles of up to 3 mrad, in particular up to 1.4 mrad, preferably up to 0.6 mrad).
- the second polarizing beam splitter 24 there are two intermediate beams 75 and 76 as in the second embodiment.
- a third intermediate beam 77 is split from the intermediate beam 76 at the 50:50 beam splitter 95 (depicted as a line of dashes and dots).
- This third intermediate beam 77 is deflected at a second deflection element 27 and superimposed on the two intermediate beams 75 and 76 at a third polarizing beam splitter 29 .
- the angle between the third intermediate beam 77 in relation to the first partial beam 75 and the second partial beam 76 can be adjusted.
- the division ratio between the intermediate beams at the first polarizing beam splitter 22 can be set by rotating a delay plate (1/2 plate) arranged in front of the beam multiplier element 20 .
- the beam splitting device 10 thus produces an essentially loss-free generation of two or four laser output beams 90-93 from a laser input beam 60. No partial beam or intermediate beam is lost or does not contribute to the laser output beams 90-93.
- the beam splitting device 10 can be arranged between the laser source and the scanning device. This is possible in particular if the intermediate beams 75, 76 or the output beams are at different angles to one another.
- the beam splitting device 10 can be arranged in or near an intermediate image plane of the ophthalmological laser therapy system. This applies in particular if the intermediate beams 75, 76 or the output beams are offset from one another and run parallel to one another.
- the beam splitting device 10 prefferably be arranged in or near a pupil plane of the ophthalmological laser therapy system. This applies in particular if the intermediate beams 75, 76 or the output beams have an angle that is not equal to zero in relation to one another.
- the beam splitting device 10 when the beam splitting device 10 is removed from the beam path, a single laser beam can fall on the eye to be treated.
- the beam splitting device 10 can be removed from the beam path and be reintroduced into it. This can take place, for example, by moving the beam splitting device 10 back and forth and/or pivoting it back and forth.
- the laser beams or output beams or intermediate beams 75, 76 are preferably at a distance from one another of a few Airy on the eye to be treated.
- An Airy is or corresponds to the diameter of the (innermost) Airy disc or the (innermost) diffraction disc of the respective laser beam. It is possible that the laser beams or output beams or intermediate beams 75, 76 overlap on the eye to be treated. As a result, the power per laser beam can be lower.
- the distance between the centers of the laser beams on the eye to be treated can be in the range of approx. 0.5 Airy to 10 Airy.
- the beam splitting device 10 comprises one beam multiplier element, two beam multiplier elements or more than two beam multiplier elements, e.g. three, four, five or more than five beam multiplier elements, which are each arranged in series one behind the other.
- the active surfaces or splitter surfaces 23, 25 of the polarizing beam splitters 22, 24 (beam splitter surface), the first deflection element 26 (first deflection surface), the second deflection element 27 (second deflection surface) and/or the retardation plate 50 or retardation plates (the surfaces thereof) surface normals that are not parallel to the respective incident laser beam or the respective incident laser beams.
- the dividers may have a wedge to achieve this.
- the retardation plate 50 or the retardation plates 50, 51 can each be arranged (slightly) obliquely in the beam path.
- the dividing surfaces 23, 25 can also be arranged within a common prism base body, or be designed as dividing plates. Furthermore, both dividing surfaces and deflection elements can be arranged in a common prism.
- the light beams or laser beams can have the shape of a spiral or be arranged in a spiral on the eye to be treated.
- Other shapes such as a line or along a straight line, in a square, a hexagonal shape or similar are imaginable.
- a line would be advantageous, for example, if the eye is swept over the eye in a meandering manner by the scanning device with the laser beams or output beams.
- the polarization of the intermediate beams 75, 76 or output beams can be such, e.g. by means of delay plates 50, 51 and/or an arrangement of several beam multiplier elements at predetermined angles around the x-axis, that all laser beams on the eye have essentially the same intensity.
- the difference in intensity to one another can be in the range of up to 20%.
- the distance between the laser beams on the eye to be treated can be variable. This can be achieved, for example, by changing the tilt angle of the deflection surfaces of the first deflection element 26 and/or the second deflection element 27 and/or the beam splitter surfaces of the first polarizing beam splitter 22 and/or the second polarizing beam splitter 24.
- a further possibility is that the first deflection element 26 and/or the second deflection element 27 and/or the polarizing beam splitters 22, 24 are shifted relative to one another.
- the position of the laser beams relative to each other on the eye can also be changed. This can take place, for example, by rotating the first beam multiplier element 20 and/or the second beam multiplier element 40 about the z-axis and/or about the x-axis and/or y-axis.
- the intermediate beams or the output beams are simultaneously offset from one another (e.g. due to different distances between the first polarizing beam splitter or the second polarizing beam splitter and the first deflection element and/or the second deflection element) and have an angle to one another that is not equal to zero degrees (eg due to an angle that is not equal to zero degrees between the deflection elements and/or an angle that is not equal to ninety degrees between the splitter surfaces of the beam splitters).
- the beam multiplier element can be arranged, for example, at a point between a pupil plane and an intermediate image plane.
- the beam splitting device 10 can have a lens for the spatial displacement of the intermediate beams or output beams relative to one another.
- first polarizing beam splitter of the second beam splitting device 44 second polarizing beam splitter of the second beam splitting device 46 deflection element of the second beam splitting device
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Abstract
Description
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Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE102021106407.4A DE102021106407A1 (de) | 2021-03-16 | 2021-03-16 | Strahlteilungsvorrichtung, ophthalmologisches Lasertherapiesystem, Verfahren zum Scannen eines Patientenauges und Verfahren zum Aufteilen |
| PCT/EP2022/053970 WO2022194484A1 (de) | 2021-03-16 | 2022-02-17 | Strahlteilungsvorrichtung, ophthalmologisches lasertherapiesystem, verfahren zum scannen eines patientenauges und verfahren zum aufteilen |
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| EP4308054A1 true EP4308054A1 (de) | 2024-01-24 |
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| EP22706596.8A Pending EP4308054A1 (de) | 2021-03-16 | 2022-02-17 | Strahlteilungsvorrichtung, ophthalmologisches lasertherapiesystem, verfahren zum scannen eines patientenauges und verfahren zum aufteilen |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20240325199A1 (de) |
| EP (1) | EP4308054A1 (de) |
| DE (1) | DE102021106407A1 (de) |
| WO (1) | WO2022194484A1 (de) |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| DE102023122201A1 (de) | 2023-08-18 | 2025-02-20 | Carl Zeiss Meditec Ag | Vorrichtung und Verfahren zum Erzeugen mindestens einer Schnittfläche, Vorrichtung und Verfahren zum Erzeugen von Steuerdaten |
| DE102023124729A1 (de) | 2023-09-13 | 2025-03-13 | Carl Zeiss Meditec Ag | Vorrichtung zum Erzeugen von Steuerdaten, Kontaktelement, Behandlungsvorrichtung, Verfahren zum Erzeugen von Steuerdaten, Verfahren zur refraktiven Korrektur |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| JP3479878B2 (ja) | 2000-03-27 | 2003-12-15 | 住友重機械工業株式会社 | レーザ加工方法及び加工装置 |
| DE102007019812B4 (de) * | 2007-04-26 | 2021-08-26 | Carl Zeiss Meditec Ag | Laserchirurgische Vorrichtung zur Augenbehandlung |
| US8388609B2 (en) | 2008-12-01 | 2013-03-05 | Amo Development, Llc. | System and method for multibeam scanning |
| JP6022223B2 (ja) | 2012-06-14 | 2016-11-09 | 株式会社ディスコ | レーザー加工装置 |
| DE102014201739B4 (de) * | 2014-01-31 | 2021-08-12 | Trumpf Laser- Und Systemtechnik Gmbh | Laserbearbeitungsvorrichtung sowie Verfahren zum Erzeugen zweier Teilstrahlen |
| DE102017203655B4 (de) * | 2017-03-07 | 2019-08-22 | Robert Bosch Gmbh | Verfahren und Vorrichtung zur Formung von Strahlung für die Laserbearbeitung |
| KR102499252B1 (ko) | 2017-03-31 | 2023-02-13 | 유니버시티 오브 로체스터 | 광학 재료에 굴절률 변화를 기입하기 위한 빔 멀티플렉서 |
-
2021
- 2021-03-16 DE DE102021106407.4A patent/DE102021106407A1/de active Pending
-
2022
- 2022-02-17 US US18/282,768 patent/US20240325199A1/en active Pending
- 2022-02-17 WO PCT/EP2022/053970 patent/WO2022194484A1/de not_active Ceased
- 2022-02-17 EP EP22706596.8A patent/EP4308054A1/de active Pending
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| Publication number | Publication date |
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| DE102021106407A1 (de) | 2022-09-22 |
| WO2022194484A1 (de) | 2022-09-22 |
| US20240325199A1 (en) | 2024-10-03 |
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