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Published on: October 5, 2018
Bypassing absorbing objects in focused ultrasound using computer generated holographic technique.
1School of Physics & Astronomy, Tel-Aviv University, Tel-Aviv 69978, Israel.
Focused ultrasound (FUS) therapy can now bypass absorbers using 3D acoustic holograms. This new holographic technology significantly reduces unwanted heating in FUS applications, improving safety and effectiveness.
Area of Science:
- Acoustic physics
- Medical imaging
- Biomedical engineering
Background:
- Focused ultrasound (FUS) therapy heats targeted tissue but faces challenges with ultrasound absorbers in the acoustic path.
- Absorbers can cause unintended heating, posing a risk in clinical applications like brain and liver treatments.
Purpose of the Study:
- To propose and demonstrate an acoustic simulation-based solution using 3D continuous acoustic holograms to reduce absorber heating in FUS.
- To compare the holographic solution against the standard geometrical method for mitigating unwanted heating.
Main Methods:
- Generated 3D continuous acoustic holograms using the iterative Gerchberg-Saxton (GS) algorithm and fast Fourier transform (FFT) acoustic simulation.
- Demonstrated hologram performance via temperature elevation images acquired using MRI-guided FUS with a planar phased-array transducer.
Main Results:
- Successfully generated 3D holograms with reduced intensity in the absorber region, tested using letter patterns 'T,' 'A,' and 'U.'
- The holographic solution achieved a 76% reduction in heating on the absorber while maintaining comparable heating at the intended focus.
Conclusions:
- Demonstrated the first generation of efficient, uniform 3D ultrasound holograms for bypassing absorbers in FUS.
- The holographic technology offers superior performance and flexibility over geometrical methods, reducing clinical risks associated with unintended heating.
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