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Flexible Body-Conformal Ultrasound Patches for Image-Guided Neuromodulation

机译:用于图像引导性神经调节的柔性体保形超声贴片

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摘要

The paper presents the design and validation of body-conformal active ultrasound patches with integrated imaging and modulation modalities for image-guided neural therapy. A mechanically-flexible linear 64-element array of piezoelectric transducers with a resonance frequency of 5 MHz was designed for nerve localization. A second 8-element array using larger elements was integrated on the wearable probe for low intensity focused ultrasound neuromodulation at a resonance frequency of 1.3 MHz. Full-wave simulations were used to model the flexible arrays and estimate their generated pressure profiles. A focal depth of 10-20 mm was assumed for beamforming and focusing to support modulation of the vagus, tibial, and other nerves. A strain sensor integrated on the probe provides patient-specific feedback information on array curvature for real-time optimization of focusing and image processing. Each patch also includes high voltage (HV) multiplexers, transmit/receive switches, and pre-amplifiers that simplify connectivity and also improve the signal-to-noise ratio (SNR) of the received echo signals by similar to 5 dB. Experimental results from a flexible prototype show a sensitivity of 80 kPa/V with similar to 3 MHz bandwidth for the modulation and 20 kPa/V with similar to 6 MHz bandwidth for the imaging array. An algorithm for accurate and automatic localization of targeted nerves based on using nearby blood vessels (e.g., the carotid artery) as image markers is also presented.
机译:本文介绍了具有用于图像引导神经疗法的集成成像和调制模式的体保形活性超声贴片的设计和验证。设计了具有5MHz的共振频率的压电换能器的机械柔性线性64元件阵列,用于神经定位。使用较大元件的第二个8元件阵列在可穿戴探针上集成在可穿戴探针上,用于低强度聚焦的超声神经调节,其共振频率为1.3MHz。全波模拟用于模拟柔性阵列并估计其产生的压力型材。假设为光束成形和聚焦以支持迷走,胫骨和其他神经的调节,假设10-20mm的焦点。集成在探测器上的应变传感器提供有关阵列曲率的患者特定的反馈信息,用于对焦和图像处理的实时优化。每个贴片还包括高电压(HV)多路复用器,发送/接收开关和预放大器,其简化连接,并且还通过类似于5dB来提高所接收的回波信号的信噪比(SNR)。柔性原型的实验结果显示了80 kPa / v的灵敏度,其具有类似于3 MHz带宽的调制和20kPa / v,具有类似于成像阵列的6 MHz带宽。还提出了一种基于使用附近血管(例如,颈动脉)作为图像标记的靶神经的准确和自动定位算法。

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