Scanning device

US10517762B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10517762-B2
Application numberUS-201816148543-A
CountryUS
Kind codeB2
Filing dateOct 1, 2018
Priority dateMar 26, 2005
Publication dateDec 31, 2019
Grant dateDec 31, 2019

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A scanning device for focusing a beam of rays in defined regions of a defined volume, comprising an input optics wherein the beam of rays penetrates first, having at least one first optical element; a focusing optics for focusing the beam of rays exiting from the input optics; and a deflecting device arranged between the first optical element and the focusing optics, for deflecting the beam of rays after it has passed through the first optical element, based on a position of the focus to be adjusted in lateral direction. In order to adjust the position of the focus of the beam of rays in the direction of the beam of rays, and optical element of the input optics can be displaced relative to the deflecting device.

First claim

Opening claim text (preview).

The invention claimed is: 1. A surgical laser system including a scanning device for focusing a luminous beam into a selected range of an eye to be treated, the surgical laser system comprising: a femtosecond surgical laser source that produces the luminous beam; entrance optics following the femtosecond surgical laser source into which the luminous beam first enters comprising at least a first optical element; focusing optics by which the luminous beam emitted from the entrance optics is focused on or into the eye to be treated; a deflecting device arranged between the first optical element and the focusing optics that diverts a focus position of the luminous beam; the deflecting device comprising a first movable reflective element movable about a first axis configured to deflect the luminous beam in an X direction and a second movable reflective element movable about a second axis that is substantially orthogonal to the first axis configured to deflect the luminous beam in a Y direction; and a beam splitter, located between the deflecting device and the focusing optics; and in which the entrance optics and focusing optics are chromatically corrected over a spectral range of selected femtosecond pulses such that the selected femtosecond pulses are focused with a dispersion induced temporal broadening of less than 30%. 2. The surgical laser system including a scanning device as claimed in claim 1 , wherein the entrance optics comprise at least one movable optical element that is configured to be movable along an axis generally parallel to the luminous beam where the luminous beam passes through the entrance optics to the deflecting device to adjust the focus position of the luminous beam within a portion of the eye. 3. The surgical laser system including a scanning device as claimed in claim 2 , further comprising at least one movable optical element, which when displaced relative to the deflecting device, alters the divergence of the radiation beam emitted from the entrance optics. 4. The surgical laser system including a scanning device as claimed in claim 2 , in which the movable optical element comprises the first optical element and the movable optical element has a negative refraction power lens or comprises a group of lenses having negative refractive power. 5. The surgical laser system including a scanning device as claimed in claim 2 , further comprising a driving device, which preferably comprises a linear drive, which moves the movable optical element relative to the deflecting device. 6. The surgical laser system including a scanning device as claimed in claim 1 , further comprising a contact lens following the deflecting device and the focusing optics that is engageable with a cornea of the eye, the contact lens having a contact area by which contact with the cornea is made. 7. The surgical laser system including a scanning device as claimed in claim 1 , in which the first optical element of the entrance optics comprises a lens or a group of lenses with negative refractive power and the surgical laser system further comprising a collecting lens or group of lenses with positive refractive power arranged in the direction of the luminous beam. 8. The surgical laser system including a scanning device as claimed in claim 1 , in which the deflecting device is positioned between the entrance optics and the focusing optics. 9. The surgical laser system including a scanning device as claimed in claim 8 , further comprising pupil optics, and a collecting lens which is arranged between the first movable reflective element and the second movable reflective element, and in which the first movable reflective element is imaged on the second movable reflective element. 10. The surgical laser system including a scanning device as claimed in claim 1 , in which the movable optical element is movable over a distance relative to the deflecting device sufficiently large that the focus of the luminous beam can be moved in the beam direction over a range larger than about 0.5 millimeter. 11. The surgical laser system including a scanning device as claimed in claim 1 , in which the deflecting device is operable such that the focus of the luminous beam can be moved laterally in a range having a diameter of at least about eleven millimeters. 12. The surgical laser system including a scanning device as claimed in claim 1 , wherein the femtosecond laser radiation source, the entrance optics and the focusing optics are configured such that the focus of the luminous beam has a diameter smaller than about five micrometers. 13. A method of focusing a luminous beam into a selected range of a volume of an eye to be treated, the method comprising: producing the luminous beam with a femtosecond laser source; directing the luminous beam into entrance optics comprising at least a first optical element; deflecting the luminous beam about a first axis and second axis that is orthogonal to the first axis; dividing the luminous beam with a beam splitter; then focusing the luminous beam on or into the eye to be treated with focusing optics; and utilizing chromatically corrected optics that are chromatically corrected over a spectral range of selected femtosecond pulses for the entrance optics and the focusing optics such that the selected femtosecond pulses are focused with a dispersion induced temporal broadening of less than 30%. 14. The method of focusing a luminous beam into a selected range of a volume of an eye to be treated as claimed in claim 13 , further comprising moving a movable optical element of the entrance optics along an axis parallel to the luminous beam to adjust the focus position of the luminous beam within a portion of the eye. 15. The method of focusing a luminous beam into a selected range of a volume of an eye to be treated as claimed in claim 13 , further comprising applying a contact lens to a cornea of the eye and directing the luminous beam through the contact lens. 16. The method of focusing a luminous beam into a selected range of a volume of an eye to be treated as claimed in claim 13 , further comprising altering the divergence of the radiation beam emitted from the entrance optics by movement of a movable optical element, preferably by operation of a driving device. 17. The method of focusing a luminous beam into a selected range of a volume of an eye to be treated as claimed in claim 16 , further comprising collecting light at a collecting lens which is arranged between a first movable reflective element and a second movable reflective element that deflect the luminous beam about the first axis and the second axis. 18. The method of focusing a luminous beam into a selected range of a volume of an eye to be treated as claimed in claim 13 , further comprising moving the movable optical element over a distance relative to the deflecting device sufficiently large that the focus of the luminous beam is moved over a range larger than 0.5 millimeter. 19. The method of focusing a luminous beam into a selected range of a volume of an eye to be treated as claimed in claim 13 , further comprising deflecting the luminous beam laterally in a range having a diameter of at least eleven millimeters. 20. The method of focusing a luminous beam into a selected range of a volume of an eye to be treated as claimed in claim 13 , further comprising focusing the luminous beam such that the focus of the luminous beam has a diameter smaller than five micrometers.

Assignees

Inventors

Classifications

  • Scanning systems · CPC title

  • by relative axial movement of several lenses, e.g. of varifocal objective lens · CPC title

  • Cornea · CPC title

  • with both horizontal and vertical deflecting means, e.g. raster or XY scanners (colour television using laser beams scanning a display screen H04N9/3129) · CPC title

  • A61F9/0084Primary

    Laser features or special beam parameters therefor · CPC title

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What does patent US10517762B2 cover?
A scanning device for focusing a beam of rays in defined regions of a defined volume, comprising an input optics wherein the beam of rays penetrates first, having at least one first optical element; a focusing optics for focusing the beam of rays exiting from the input optics; and a deflecting device arranged between the first optical element and the focusing optics, for deflecting the beam of …
Who is the assignee on this patent?
Zeiss Carl Meditec Ag
What technology area does this patent fall under?
Primary CPC classification A61F9/0084. Mapped technology areas include Human Necessities.
When was this patent published?
Publication date Tue Dec 31 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).