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Controllable Nucleation of Cavitation from Plasmonic Gold Nanoparticles for Enhancing High Intensity Focused Ultrasound Applications
Published on: October 5, 2018
Laser-induced cavitation in plasmonic nanoparticle solutions: A comparative study between gold and titanium nitride
Ariana Nushin Sabzeghabae1, Carla Berrospe-Rodriguez1, Lorenzo Mangolini1
1Department of Mechanical Engineering, University of California Riverside, Riverside, CA, USA.
Titanium nitride nanoparticles (TiN NPs) show superior stability and stronger nonlinear absorption than gold nanorods (GNR) under laser irradiation. This makes TiN NPs promising for high-power applications and advanced medical treatments.
Area of Science:
- Materials Science
- Nanotechnology
- Laser Physics
Background:
- Gold nanorods (GNR) are widely studied for plasmonic applications.
- Titanium nitride nanoparticles (TiN NPs) are emerging as potential alternatives with unique optical properties.
- Understanding nanoparticle behavior under pulsed laser irradiation is crucial for various applications.
Purpose of the Study:
- To conduct a comparative study of novel TiN NPs and commercial GNR.
- To investigate their optical and physical responses to pulsed laser-induced cavitation.
- To evaluate TiN NPs as potential candidates for high-power laser applications.
Main Methods:
- Dispersion of TiN NPs and GNR in water.
- Exposure to pulsed laser-induced cavitation.
- Optical density, shockwave emission, and bubble formation analysis using shadowgraphy, spatial transmittance modulation, and acoustic measurements.
Main Results:
- TiN NP solutions demonstrated high stability under periodic nanosecond pulsed-laser irradiation.
- TiN NPs exhibited stronger nonlinear absorption compared to GNR.
- Plasma formation was observed at lower laser energies with TiN NPs.
Conclusions:
- TiN NPs offer significant advantages over GNR in terms of stability and nonlinear absorption under laser irradiation.
- These findings highlight TiN NPs as promising materials for high-power laser applications.
- The study suggests potential applications in water treatment, nonlinear signal conversion, and laser-induced cavitation for medical uses.
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