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Hybrid meta/refractive lens design with an inverse design using physical optics
Applied Optics
|June 10, 2024
Summary
This study introduces an algorithm for optimizing hybrid lenses, combining metasurface and refractive optics. The new method significantly enhances lens focusing efficiency by over 90% using metasurfaces.
Area of Science:
- Optical Engineering
- Nanotechnology
- Computational Optics
Background:
- Hybrid lenses integrate refractive and metasurface optics for enhanced performance.
- Metasurfaces offer advanced aberration correction capabilities.
- Optimizing metasurface placement within optical systems is challenging.
Purpose of the Study:
- To develop an algorithm for optimizing metasurface nanostructures in hybrid lenses.
- To enable flexible integration of metasurface and refractive elements.
- To improve the focusing efficiency of optical systems.
Main Methods:
- Developed a scalar field, ray-wave hybrid propagation method for efficient metasurface optimization.
- Implemented an adjoint gradient optimization framework.
- Demonstrated the algorithm with numerical examples of various lens configurations.
Main Results:
- The algorithm allows metasurfaces to be placed in object and image spaces.
- A midwave infrared lens design achieved over 90% average focusing efficiency with optimized metasurfaces.
- Compared to image-space-only metasurfaces (73% efficiency), the new approach shows superior performance.
Conclusions:
- The presented algorithm offers a versatile and effective method for designing advanced hybrid lenses.
- Optimizing metasurface placement, including in object space, significantly boosts optical system performance.
- This approach advances the capabilities of metasurface integration in optical design.

