Increasing the transmission efficiency of transcranial ultrasound using a dual-mode conversion technique based on Lamb waves.
Authors: Kang KC, Kim YH, Kim JN, Kabir M, Zhang Y, Ghanouni P, Park KK, Firouzi K, Khuri-Yakub BT
Transcranial focused ultrasound (FUS) is a noninvasive treatment for brain tumors and neuromodulation. Based on normal incidence, conventional FUS techniques use a focused or an array of ultrasonic transducers to overcome the attenuation and absorption of ultrasound in the skull; however, this remains the main limitation of using FUS. A dual-mode conversion technique based on Lamb waves is proposed to achieve high transmission efficiency. This concept was validated using the finite element analysis (FEA) and experiments based on changes in the incident angle. Aluminum, plexiglass, and a human skull were used as materials with different attenuations. The transmission loss was calculated for each material, and the results were compared with the reflectance function of the Lamb waves. Oblique incidence based on dual-mode conversion exhibited a better transmission efficiency than that of a normal incidence for all of the specimens. The total transmission losses for the materials were 13.7, 15.46, and 3.91 dB less than those associated with the normal incidence. A wedge transducer was designed and fabricated to implement the proposed method. The results demonstrated the potential applicability of the dual-mode conversion technique for the human skull.
Introduction
Purpose
Transcranial ultrasound stimulation
Study Objective
To propose and validate a dual-mode Lamb-wave conversion technique to increase ultrasound transmission efficiency through the skull for transcranial focused ultrasound.
Animal model / Human subject
Human (skull specimen); strain: not applicable; age: not specified; sex: not specified
Outcomes and Safety
Summary of Outcomes
No biological or behavioral effects were reported; the study demonstrated that oblique-incidence dual-mode Lamb-wave conversion improved ultrasound transmission through test materials including a human skull. The method (implemented with a wedge transducer) reduced total transmission loss versus normal incidence by 13.7 dB (aluminum), 15.46 dB (plexiglass), and 3.91 dB (human skull).
Safety-related matter
No safety issues or adverse effects were reported or discussed in the paper; the study focused on transmission efficiency and potential applicability to the human skull without safety or adverse-event data.
Brain Region
Ultrasound Parameters
Ultrasound instrument
Wedge transducer (designed and fabricated)
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
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