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Miniature varifocal objective lens for endomicroscopy.
Optics Letters
|October 10, 2013
Summary
This study presents a novel miniature catadioptric lens for endoscopic imaging that adjusts magnification and field of view without mechanical parts. This innovation enables versatile imaging applications, including reflectance and fluorescence microscopy of tissues.
Area of Science:
- Optical Engineering
- Biomedical Imaging
- Microscopy
Background:
- Endoscopic imaging requires compact optical systems with adjustable parameters.
- Traditional endoscopic lenses often rely on mechanical components for magnification and field of view (FOV) changes, limiting miniaturization and robustness.
- Wavelength division multiplexing (WDM) offers a potential method for optical control without mechanical actuation.
Purpose of the Study:
- To develop and demonstrate a miniature catadioptric lens for endoscopic imaging.
- To achieve variable magnification and FOV control without mechanical adjustments.
- To validate the lens's performance in reflectance and multiphoton fluorescence imaging applications.
Main Methods:
- Design and fabrication of a miniature catadioptric lens utilizing WDM principles.
- Characterization of lens magnification across different wavelengths (406-750 nm and 800 nm).
- Demonstration of imaging capabilities using reflectance and multiphoton fluorescence microscopy on unstained mouse tissues.
Main Results:
- The catadioptric lens achieved magnifications of approximately -1.5× (406-750 nm) and -0.2× (800 nm).
- Variable magnification and FOV were demonstrated without any mechanical reconfiguration of optical elements.
- Successful large-FOV (1.3 mm) reflectance imaging and high-resolution (0.57 μm) multiphoton fluorescence imaging of mouse tissues were performed.
Conclusions:
- A novel, mechanically tunable miniature catadioptric lens for endoscopic imaging based on WDM is presented.
- The lens offers a compact and robust solution for variable magnification and FOV control in endoscopic applications.
- The demonstrated imaging capabilities highlight its potential for advanced in vivo tissue diagnostics.
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