Multi-spot laser surgical probe using faceted optical elements
An optical surgical probe includes a handpiece, a light guide within the handpiece, and a multi-spot generator at a distal end of the handpiece. The handpiece is configured to optically couple to a light source. The light guide is configured to carry a light beam from the light source to a distal end of the handpiece. The multi-spot generator includes a faceted optical element with a faceted end surface spaced from a distal end of the light guide. The faceted end surface includes at least one facet oblique to a path of the light beam.
1. An optical surgical probe, comprising:
a cylindrical cannula;
a light guide partially within the cannula, the light guide configured to receive a light beam from a light source through a proximal end and to emit the light beam through a distal end; and
a multi-spot generator at a distal end of the cannula, the multi-spot generator including an optical element comprising a proximal optical element having a concave faceted face and a distal optical element having a convex faceted face, the optical element configured to receive the light beam from the light guide and to split the light beam into beam-components at a faceted interface between the concave faceted face of the proximal optical element and the convex faceted face of the distal optical element;
wherein the proximal optical element has a first refractive index and the distal optical element has a second refractive index different from the first refractive index.
2. The optical surgical probe of claim 1 , wherein the optical element comprises a molded adhesive.
3. The optical surgical probe of claim 1 , wherein an index of refraction of the optical element is between 1.4 and 1.6.
4. The optical surgical probe of claim 1 , wherein the optical element comprises an optical adhesive.
5. The optical surgical probe of claim 1 , wherein the first refractive index is 1.36 and the second refractive index is 1.58.
6. An optical surgical probe, comprising:
a cylindrical cannula;
a light guide partially within the cannula, the light guide configured to receive a light beam from a light source through a proximal end and to emit the light beam through a distal end; and
a multi-spot generator at a distal end of the cannula, the multi-spot generator including an optical element comprising a proximal optical element having a concave faceted face and a distal optical element having a convex faceted face, the optical element configured to receive the light beam from the light guide and to split the light beam into beam-components at a faceted interface between the concave faceted face of the proximal optical element and the convex faceted face of the distal optical element;
wherein the optical element comprises an optical adhesive;
wherein the optical adhesive is a first optical adhesive forming the proximal optical element and having a first refractive index, and the optical element further comprises a second optical adhesive forming the distal optical element and having a second refractive index different from the first refractive index.
7. The optical surgical probe of claim 1 , wherein the multi-spot generator further comprises a gradient index (GRIN) lens between the light guide and the optical element.
8. The optical surgical probe of claim 1 , wherein the light source comprises a laser.
9. The optical surgical probe of claim 1 , wherein the distal end of the cylindrical cannula is sized to be 23 Gauge or smaller.
10. An optical surgical probe, comprising:
a cylindrical cannula;
a light guide partially within the cannula, the light guide configured to receive a light beam from a light source through a proximal end and to emit the light beam through a distal end; and
a multi-spot generator at a distal end of the cannula, the multi-spot generator including an optical element comprising a proximal optical element having a concave faceted face and a distal optical element having a convex faceted face, the optical element configured to receive the light beam from the light guide and to split the light beam into beam-components at a faceted interface between the concave faceted face of the proximal optical element and the convex faceted face of the distal optical element;
wherein each of the proximal optical element and the distal optical element has four triangular facets.