Successful implementation of catheter-based optical imaging systems relies on the integration of high-performance miniaturized distal end optics. Established solutions such as GRIN-based optics or ball lens designs present strong limitations for FLIm applications due to high autofluorescence in the UV range and subpar performance when combined with multimode fibers.
To address these issues we developed compact (300 × 300 × 800 μm3) monolithic optics that consists of a fused silica element terminated by a reflective curved back surface that performs beam focusing and reflection. This concept provides high optical performances over an extended wavelength range (near UV-visible-IR) with minimal chromatic aberrations. The design of the optic, fully optimized using standard optical simulation tools, provides the ability to freely determine aperture and working distance. Experimental characterization of the optic demonstrates a good match with simulation results and performances well suited to both optical coherence tomography and fluorescence imaging, thus paving the way for high-performance multimodal endoscopy systems.
Collaborators
Dr. Brett Bouma (Massachusetts General Hospital)
Funding
NIH (National Institutes of Health): R01 HL67377, R01 HL157712
IP
US20200275828A1: Broadband, freeform focusing micro optics for side-viewing imaging catheters