神经调节
波形
声学
干扰(通信)
声辐射力
图像分辨率
超声波
啁啾声
空间频率
光学
材料科学
计算机科学
物理
电信
频道(广播)
神经科学
刺激
激光器
雷达
生物
作者
Young Hun Kim,Ki Chang Kang,Jeong Nyeon Kim,Kwan Kyu Park,Kamyar Firouzi,B.T. Khuri-Yakub
出处
期刊:Ultrasonics
[Elsevier BV]
日期:2024-03-16
卷期号:140: 107298-107298
标识
DOI:10.1016/j.ultras.2024.107298
摘要
Stimulating the brain in a precise location is crucial in ultrasound neuromodulation. However, improving the resolution proves a challenge owing to the characteristics of transcranial focused ultrasound. In this paper, we present a new neuromodulation system that overcomes the existing limitations based on an acoustic radiation force with a frequency-modulated waveform and standing waves. By using the frequency-modulated pattern interference radiation force (FM-PIRF), the axial spatial resolution can be reduced to a single wavelength level and the target location can be controlled in axial direction electronically. A linear frequency-modulated chirp waveform used in the experiment was designed based on the simulation results. The displacement of the polydimethylsiloxane (PDMS) cantilever was measured at intervals of 0.1 mm to visualize the distribution of radiation force. These results and methods experimentally show that FM-PIRF has improved spatial resolution and capability of electrical movement.
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