Title :
Scanning and Tunable Micro-Optics for Endoscopic Optical Coherence Tomography
Author :
Aljasem, Khaled ; Froehly, Luc ; Seifert, Andreas ; Zappe, Hans
Author_Institution :
Dept. of Microsyst. Eng., Univ. of Freiburg, Freiburg, Germany
Abstract :
The design, fabrication, and integration of micro-optical components for beam focus and steering are demonstrated in an endoscopic optical coherence tomography (OCT) system. The relevant components, a membrane-based microfluidic tunable microlens and an electrostatic 2-D scanning micromirror, are fabricated using silicon and polymer-based microelectromechanical system technologies. All components are assembled inside a 4.5 μm diameter probe. The design of the optical system, including substantiation of the need for focal length tunability, is presented, along with performance data of an OCT system using these components. A lateral resolution of about 13 μm is achieved, an improvement over fixed-focal length probes. Due to the miniaturization of the measurement head achievable using this optical microsystem, use in conventional endoscopes is possible.
Keywords :
endoscopes; micro-optomechanical devices; microfluidics; microlenses; micromirrors; optical fabrication; optical scanners; optical tomography; beam focus; beam steering; electrostatic 2D scanning micromirror; endoscopic optical coherence tomography; membrane based microfluidic tunable microlens; microelectromechanical system; optical microsystem; polymer; scanning and tunable microoptics; silicon; size 4.5 mum; Apertures; Endoscopes; Microoptics; Optical device fabrication; Optical imaging; Tomography; Endoscopic imaging; endoscopic optical coherence tomography; microlenses; micromirrors; tunable microoptics;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2011.2167656