Abstract:
In general, in one aspect, the invention features methods that include guiding radiation at a first wavelength, λ1, through a core of a photonic crystal fiber and guiding radiation at a second wavelength, λ2, through the photonic crystal fiber, wherein |λ 1 - λ 2| > 100 nm.
Abstract:
In general, in one aspect, the invention features systems, including a photonic crystal fiber (120) including a core (210) extending along a waveguide axis and a dielectric confinement region (220) surrounding the core, the dielectric confinement region (220) being configured to guide radiation along the waveguide axis from an input end to an output end of the photonic crystal fiber (120). The systems also includes a handpiece (680) attached to the photonic crystal fiber (120), wherein the handpiece allows an operator to control the orientation of the output end to direct the radiation to a target location of a patient.
Abstract:
In general, in one aspect, the invention features methods that include guiding radiation at a first wavelength, ?1, through a core of a photonic crystal fiber and guiding radiation at a second wavelength, ?2, through the photonic crystal fiber, wherein |? 1 - ? 2| > 100 nm.
Abstract:
In general, in one aspect, the invention features systems, including a photonic crystal fiber including a core extending along a waveguide axis and a dielectric confinement region surrounding the core, the dielectric confinement region being configured to guide radiation along the waveguide axis from an input end to an output end of the photonic crystal fiber. The systems also includes a handpiece attached to the photonic crystal fiber, wherein the handpiece allows an operator to control the orientation of the output end to direct the radiation to a target location of a patient.