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Ultrasonic Wireless Power and Data Communication for Neural Stimulation

机译:用于神经刺激的超声波无线电力和数据通信

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Wireless neural stimulation has gained wide interest, as it has potential in several clinical applications such as deep brain stimulation and neuromuscular stimulation. Most of the exiting wireless power and data transmission methods are using electromagnetic waves in the radio frequency range. However, the power transmission in this case often has limited penetration. In this study, we propose ultrasound as vehicles for both power and data transmission for wireless, implantable neural stimulation. The main advantage is that ultrasound in the MHz range can be focused at depth, thus providing an effective way for power transmission under FDA safety limits. In addition, the weak acoustic scattering in soft tissues also allows accurate data communication with the implanted device using ultrasound. To demonstrate the feasibility, we have designed and fabricated a prototype device, which consists of a PVDF transducer (1MHz center frequency and 6mm diameter) and a custom design IC that performs AC-DC conversion and decoding of the ultrasound signals for controlling the neural stimulator. power is measured and compared to the power consumption required by the stimulation circuit. Variations of amplitude-shift keying (ASK), frequency-shift keying (FSK) and phase-shift keying (PSK) are all tested and bit error rates (BERs) are calculated to assess performance of different coding schemes. A tissue mimicking phantom with speckle generating background and acoustic attenuation at 0.5dB/MHz/cm is used during measurements. At an acoustic power of 112 mW from the transmit transducer, 4.15 mW can be received and made available by the device, which only consumes a power of 1,8 mW for neural stimulation. A BER of 10~(-6) at 25 kbps data rate is achieved. With the current device, it is possible to increase the transmission power to as high as 19.76 mW without exceeding the FDA safety limits (Ispta=720mW/cm2). A smaller transducer can also be used to reduce the size of the implantable device. Feasibility of ultrasonic wireless neural stimulation is clearly demonstrated.
机译:无线神经刺激已经获得了广泛的兴趣,因为它具有诸如深脑刺激和神经肌肉刺激之类的几种临床应用中的潜力。大多数退出的无线电源和数据传输方法都在射频范围内使用电磁波。然而,这种情况下的动力传输通常具有有限的渗透。在这项研究中,我们提出了用于无线,可植入的神经刺激的功率和数据传输的车辆的超声波。主要优点是MHz系列中的超声可以在深度聚焦,从而为FDA安全限制提供有效的电力传输方式。此外,软组织中的弱声散射还允许使用超声波准确地与植入设备进行数据通信。为了展示可行性,我们设计并制造了一种原型装置,该原型装置包括PVDF传感器(1MHz中心频率和6mm直径)和定制设计IC,其执行用于控制神经刺激器的超声信号的AC-DC转换和解码。测量电力并与刺激电路所需的功耗进行比较。幅度移位键控(询问),频移键控(FSK)和相移键控(PSK)的变化是所有测试的,并且计算误码率(BERS)以评估不同编码方案的性能。在测量期间使用用散斑产生背景和声学衰减的粉刺模拟幻像组织。在从发射换能器112mW的声功率下,可以通过设备接收和提供4.15mW,仅消耗1,8 MW的功率以进行神经刺激。实现了25 kbps数据速率的10〜(-6)的BER。利用当前装置,可以在不超过FDA安全限制(ISPTA = 720mW / cm2)的情况下将传输功率提高到高达19.76 MW。较小的换能器也可用于减小可植入装置的尺寸。显然证明了超声波无线神经刺激的可行性。

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