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Split-mode ultrasonic transducer
Igor Ostrovskii1, Lucien Cremaldi
1Department of Physics and Astronomy, The University of Mississippi, University, Mississippi 38677, USA.
This study introduces a novel split-mode ultrasonic transducer with unmetallized surfaces, ideal for biomedical uses. Its unique design enables multiple resonances for advanced ultrasonic applications.
Area of Science:
- Materials Science
- Acoustics
- Solid-State Physics
Background:
- Conventional ultrasonic transducers often require metal coatings, limiting their use in sensitive applications.
- Developing advanced ultrasonic devices for micro-scale applications and biomedical interventions is an ongoing challenge.
Purpose of the Study:
- To investigate the theory and experimental validation of a novel split-mode ultrasonic transducer.
- To explore the potential of a ferroelectric wafer-based transducer with free surfaces for diverse applications.
Main Methods:
- Theoretical modeling of acoustic vibrations and acousto-electric resonances in a periodically poled ferroelectric wafer.
- Experimental excitation of acoustic vibrations using radio frequency electric current.
- Analysis of acoustic mode splitting and its relation to domain length.
Main Results:
- Demonstrated a split-mode ultrasonic transducer with periodically poled domains and free surfaces.
- Observed multiple acousto-electric resonances due to acoustic mode splitting.
- Experimental results showed good agreement with theoretical calculations.
Conclusions:
- The developed split-mode ultrasonic transducer offers a promising platform for micro-scale ultrasound generation and detection.
- The unmetallized surface design opens avenues for advanced biomedical applications, including intravascular imaging and localized ultrasound therapy.
- Potential for dual-action therapeutic applications combining ultrasound and electric fields was highlighted.
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