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Effective light beam modulation by chirp IDT on a suspended LiNbO3 membrane for 3D holographic displaysoa mark
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Publication Year
2020-02-02
Publisher
MDPI AG
Citation
Sensors (Switzerland), Vol.20
Keyword
Acousto-opticActive lensBragg diffractionHolographic displaySurface acoustic waveWaveguide
Mesh Keyword
3D holographic displaysBragg diffractionCoupling efficiencyCoupling of modesDeflection anglesDevice performanceInterdigital transducerSurface acoustic waves
All Science Classification Codes (ASJC)
Analytical ChemistryInformation SystemsAtomic and Molecular Physics, and OpticsBiochemistryInstrumentationElectrical and Electronic Engineering
Abstract
An acousto-optic (AO) holographic display unit based on a suspended waveguide membrane was developed. The AO unit consists of a wide bandwidth chirp interdigital transducer (IDT) on a 20 µm thick suspended crystalline 128◦ YX LiNbO3 membrane, a light blocker with a 20 µm hole near the entrance, and an active lens near the exit. The 20 µm thickness of the floating membrane significantly enhanced surface acoustic wave (SAW) confinement. The light blocker was installed in front of the AO unit to enhance the coupling efficiency of the incident light to the waveguide membrane and to remove perturbations to the photodetector during measurement at the exit region. The active lens was vertically attached to the waveguide sidewall to collect the diffracted beam without loss and to modulate the focal length in free space through the applied voltage. As SAWs were radiated from the IDT, a Bragg grating with periodic refractive indexes was formed along the waveguide membrane. The grating diffracted incident light. The deflection angle and phase, and the intensity of the light beam were controlled by the SAW frequency and input power, respectively. The maximum diffraction efficiency achieved was approximately 90% for a 400 MHz SAW. COMSOL simulation and coupling of mode modeling were performed to optimize design parameters and predict device performance.
ISSN
1424-8220
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/31166
DOI
https://doi.org/10.3390/s20041218
Fulltext

Type
Article
Funding
This research was supported by Science Research Program through the National Research Foundation of Korea (NRF) funded by the Ministry of Education (NRF-2017R1D1A1B03035227 and 2019R1F1A1041432).Author Contributions: K.L. has been organized and supervised all the projects. Y.L. simulated, fabricated, and then tested the developed AO unit. The writing of the manuscript was equally contributed by K.L. and Y.L. Acknowledgments: This research was supported by Science Research Program through the National Acknowledgments: This research was supported by Science Research Program through the National Research 2019R1F1A1041432). Foundation of Korea (NRF) funded by the Ministry of Education (NRF‐2017R1D1A1B03035227 and 2C0o1n9fRli1cFts1Aof10In41te4r3e2s)t.: There are no conflicts to declare.
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Lee, Kee Keun Image
Lee, Kee Keun이기근
Department of Electrical and Computer Engineering
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