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Demonstration of Equal-Intensity Beam Generation by Dielectric Metasurfaces
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Enhanced Broadband Manipulation of Acoustic Vortex Beams Using 3-bit Coding Metasurfaces through Topological
Sheng-Dong Zhao1,2, Na-Li Zhang1, Ping Han1
1School of Mathematics and Statistics, Qingdao University, Qingdao, 266071, P. R. China.
Small (Weinheim an Der Bergstrasse, Germany)
|January 17, 2024
Summary
This study introduces novel 3-bit broadband reflected acoustic coding metasurfaces (BACMs) for advanced acoustic manipulation. These metasurfaces offer precise control over sound waves for applications like acoustic communication.
Area of Science:
- Acoustics
- Materials Science
- Wave Physics
Background:
- Acoustic coding metasurfaces (ACMs) offer versatile control over acoustic waves through programmable coding sequences.
- Broadband capabilities enhance ACM versatility, enabling more complex acoustic functions with fewer units compared to traditional metasurfaces.
- Multi-bit designs allow for precise phase control of sound waves.
Purpose of the Study:
- To develop novel 3-bit broadband reflected acoustic coding metasurfaces (BACMs) for advanced acoustic manipulation.
- To systematically design these BACMs using a bottom-up topology optimization method.
- To explore their potential in creating acoustic vortices and manipulating acoustic beams.
Main Methods:
- Bottom-up topology optimization for systematic design of 3-bit BACMs.
- Design of eight coding units achieving a constant 45° phase difference across a broad frequency range.
- Utilizing convolution methods for constructing vortex-focusing and vortex beam manipulation metasurfaces.
Main Results:
- Successful development of 3-bit BACMs with eight coding units.
- Demonstration of a constant 45° phase difference across all units in a broad frequency range.
- Construction of acoustic vortex metasurfaces and strategies for vortex beam manipulation.
Conclusions:
- The developed 3-bit BACMs provide precise control over acoustic waves, enabling complex functionalities.
- These metasurfaces show significant potential for applications in acoustic particle suspension and acoustic communication.
- The design methodology facilitates the creation of advanced acoustic devices for diverse applications.
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