METHOD FOR CONTROLLING AN EYE SURGICAL LASER AND TREATMENT DEVICE
20210052423 · 2021-02-25
Inventors
- Samuel Arba-Mosquera (Aschaffenburg, DE)
- Rüdiger WERNER (Biebergemünd-Bieber, DE)
- Nico Triefenbach (Mainaschaff, DE)
- Mario Shraiki (Stockstadt, DE)
Cpc classification
International classification
Abstract
The invention relates to a method for controlling an eye surgical laser for the separation of a volume body with a predefined posterior interface and a predefined anterior interface from a cornea, comprising controlling the laser by means of a control device such that it emits pulsed laser pulses in a shot sequence in a predefined pattern into the cornea, wherein the interfaces of the volume body to be separated are defined by the predefined pattern and the interfaces are generated by means of an interaction of the individual laser pulses with the cornea by the generation of a plurality of cavitation bubbles generated by photodisruption, wherein the predefined pattern is generated by means of a mesh-like guidance of the emitted laser pulses and the control device controls the shot sequence of the laser such that a common overlap area of the cavitation bubbles is generated between adjacent cavitation bubbles. Further, the invention relates to a treatment device, to a computer program as well as to a computer-readable medium.
Claims
1. A method for controlling an eye surgical laser for the separation of a volume body with a predefined posterior interface and a predefined anterior interface from a human or animal cornea, comprising: controlling the laser by means of a control device such that it emits pulsed laser pulses in a shot sequence in a predefined pattern into the cornea, wherein the predefined posterior and anterior interfaces of the volume body to be separated are defined by the predefined pattern and the predefined posterior and anterior interfaces are generated by means of an interaction of the individual laser pulses with the cornea by the generation of a plurality of cavitation bubbles generated by photodisruption, wherein the predefined pattern is generated by means of a mesh-like guidance of the emitted laser pulses and the control device controls the shot sequence of the laser such that a common overlap area of the cavitation bubbles is generated between adjacent cavitation bubbles.
2. The method according to claim 1, wherein the control of the laser is effected such that a mesh-like structure of the plurality of the cavitation bubbles is generated by means of the predefined pattern.
3. The method according to claim 1, wherein the control of the laser is effected such that a lenticular volume body is separated.
4. The method according to claim 1, wherein the control of the laser is effected such that the common overlap area is generated at least in time after the shot sequence.
5. The method according to claim 1, wherein the control of the laser is effected such that the plurality of cavitation bubbles is generated along a cavitation bubble path of the predefined pattern.
6. The method according to claim 1, wherein the control of the laser is effected such that the plurality of cavitation bubbles is generated along a plurality of cavitation bubble paths of the predefined pattern, wherein the common overlap area is respectively generated between the respective cavitation bubble paths.
7. The method according to claim 5, wherein the control of the laser is effected such that the cavitation bubble path generated is a meandering cavitation bubble path or a spiral cavitation bubble path or an annular cavitation bubble path or a grid-like cavitation bubble path or a triangular cavitation bubble path or a helical cavitation bubble path.
8. The method according to claim 6, wherein the control of the laser is effected such that the plurality of cavitation bubble paths at least partial overlap for generating the predefined pattern.
9. The method according to claim 6, wherein the control of the laser is effected such that for generating the predefined pattern, a first one of the cavitation bubble path of the plurality of cavitation bubble paths is generated in meandering or spiral or annular or grid-like or triangular or helical manner and at least a second cavitation bubble path of the plurality of cavitation bubble paths is generated different from the first cavitation bubble path in meandering or spiral or grid-like or annular or triangular or helical manner.
10. The method according to claim 6, wherein the control of the laser is effected such that a number of the plurality of cavitation bubble paths is generated depending on a preset smoothness value for the predefined posterior and anterior interfaces.
11. The method according to claim 6, wherein the control of the laser is effected such that at least a first cavitation bubble path of the plurality of cavitation bubble paths has a centering different from a second cavitation bubble path of the plurality of the cavitation bubble paths.
12. The method according to claim 1, wherein the control of the laser is effected such that topographic and/or pachymetric and/or morphologic data of the cornea are taken into account.
13. The method according to claim 1, wherein the control of the laser is effected such that the laser emits laser pulses in a wavelength range between 300 nm and 1400 nm, in particular between 700 nm and 1200 nm, at a respective pulse duration between 1 fs and 1 ns, in particular between 10 fs and 10 ps, and a repetition frequency of greater than 10 kHz, in particular between 100 kHz and 10 MHz.
14. A treatment device with at least one surgical laser for the separation of a volume body with predefined interfaces of a human or animal eye by means of photodisruption and with at least one control device, which is formed for controlling the laser according to the method of claim 1.
15. The treatment device according to claim 14, wherein the at least one control device comprises: at least one storage device for at least temporary storage of at least one control dataset, wherein the control dataset or datasets include(s) control data for positioning and/or for focusing individual laser pulses in the cornea; and at least one beam device for beam guidance and/or beam shaping and/or beam deflection and/or beam focusing of a laser beam of the laser.
16. A computer program including instructions, which cause a treatment device with at least one surgical laser for the separation of a volume body with predefined interfaces of a human or animal eye by means of photodisruption and with at least one control device for controlling the at least one surgical laser to execute the method steps according to claim 1.
17. A computer-readable medium, on which the computer program according to claim 16 is stored.
18. The method according to claim 6, wherein the control of the laser is effected such that each of the plurality of cavitation bubble paths generated is one of a meandering cavitation bubble path or a spiral cavitation bubble path or an annular cavitation bubble path or a grid-like cavitation bubble path or a triangular cavitation bubble path or a helical cavitation bubble path.
19. The method according to claim 18, wherein the control of the laser is effected such that the plurality of cavitation bubble paths at least partial overlap for generating the predefined pattern.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0031] Further features are apparent from the claims, the figures and the description of figures. The features and feature combinations mentioned above in the description as well as the features and feature combinations mentioned below in the description of figures and/or shown in the figures alone are usable not only in the respectively specified combination, but also in other combinations without departing from the scope of the invention. Thus, implementations are also to be considered as encompassed and disclosed by the invention, which are not explicitly shown in the figures and explained, but arise from and can be generated by separated feature combinations from the explained implementations. Implementations and feature combinations are also to be considered as disclosed, which thus do not comprise all of the features of an originally formulated independent claim. Moreover, implementations and feature combinations are to be considered as disclosed, in particular by the implementations set out above, which extend beyond or deviate from the feature combinations set out in the relations of the claims.
[0032]
[0033]
[0034]
DETAILED DESCRIPTION
[0035]
[0036] Furthermore, one recognizes that the laser beam 24 generated by the laser 18 is deflected towards a surface 26 of the cornea by means of a beam device 22, namely a beam deflection device such as for example a scanner. The beam deflection device 22 is also controlled by the control device 20 to generate the mentioned predefined pattern in the cornea.
[0037] The illustrated laser 18 is a photodisruptive laser, which is formed to emit laser pulses in a wavelength range between 300 nm and 1400 nm, preferably between 700 nm and 1200 nm, at a respective pulse duration between 1 fs and 1 ns, preferably between 10 fs and 10 ps, and a repetition frequency of greater than 10 KHz, preferably between 100 kHz and 100 MHz.
[0038] In addition, the control device 20 comprises a storage device (not illustrated) for at least temporary storage of at least one control dataset, wherein the control dataset or datasets include(s) control data for positioning and/or for focusing individual laser pulses in the cornea. The position data and/or focusing data of the individual laser pulses are generated based on a previously measured topography and/or pachymetry and/or the morphology of the cornea and the pathological and/or unnaturally altered area 32 for example to be removed within the stroma 36 of the eye.
[0039]
[0040] In the illustrated embodiment, the interface 14, that is the interface located deeper in the eye or the stroma 36, is first formed by means of the laser beam 24, wherein it then corresponds to the posterior interface 14. This can be effected by at least partially circularly and/or spirally guiding the laser beam 24 according to the predefined pattern. Subsequently, the interface 16 is generated in comparable manner, which then corresponds to the anterior interface 16 such that the interfaces 14, 16 form the lenticular volume body 12 (see also
[0041]
[0042] In particular,
[0043] Further, it can in particular be provided that the control of the laser 18 is effected such that for generating the predefined pattern, the first cavitation bubble path 42 of the plurality of cavitation bubble paths 42, 44 is generated in meandering or spiral or annular or grid-like or triangular or helical manner and at least the second cavitation bubble path 44 of the plurality of cavitation bubble paths 42, 44 is formed different from the first cavitation bubble path 42 in meandering or spiral or grid-like or annular or triangular or helical manner.
[0044] In particular, it can further be provided that the control of the laser 18 is effected such that a number of cavitation bubble paths 42, 44 is generated depending on a preset smoothness value for the interfaces. In particular, the smoothness value can for example be generated by the number of cavitation bubble paths, wherein the smoothness value can for example be determined via the number n of the cavitation bubble paths as n.sup.0.5.
[0045] Furthermore, it is seen in
[0046]