论文标题

双重指导性大脑通信,用于完全不受束缚的连接大脑植入物

Bi-Phasic Quasistatic Brain Communication for Fully Untethered Connected Brain Implants

论文作者

Chatterjee, Baibhab, Nath, Mayukh, K, Gaurav Kumar, Xiao, Shulan, Jayant, Krishna, Sen, Shreyas

论文摘要

使用电磁(EM)场的无线通信充当人体可穿戴设备之间信息交换的主链。但是,对于植入的设备,EM领域会在组织中引起大量吸收,而替代性传播模式在内,包括超声,光学和磁电气方法会导致由于将一种能量转化为另一种能量,从而导致大量的转导损失,从而增加了整体端到端的能量损失。为了解决低端通道损失的大脑植入物中动力和通信的挑战,我们提出了双重的绝对大脑通信(BP-QBC),通过避免在现场模式转换期间避免使用55mm的通道长度,达到55mm的端到端通道损失,达到了<60dB最差的端到端通道损失。 BP-QBC使用发射器中的差分激发和接收器的差异信号拾取,利用脑组织内基于偶极耦合的信号传递,并提供41倍较低的功率W.R.T.传统的电能型人体在1MHz的载体频率下通过阻断通过脑组织的任何直流电流路径。由于通过人体组织的电信号转移是多质量的MHz范围,因此BP-QBC允许从植入物到外部可穿戴的可扩展(BPS-10MBPS)占用税收式上行链路。 BP-QBC TX中的功耗仅为1Mbps的0.52UW(占1%的循环),该功耗位于从外部可穿戴到脑植入物的下行链路中收获的车身耦合功率范围内。此外,BP-QBC消除了对颅底中继器的需求,因为它利用了准静态电信号,从而避免了任何转导损失。如此低的端到端渠道损失具有高数据速率,将在神经科学,脑机界面,电内部和连接的医疗保健中找到应用。

Wireless communication using electro-magnetic (EM) fields acts as the backbone for information exchange among wearable devices around the human body. However, for Implanted devices, EM fields incur high amount of absorption in the tissue, while alternative modes of transmission including ultrasound, optical and magneto-electric methods result in large amount of transduction losses due to conversion of one form of energy to another, thereby increasing the overall end-to-end energy loss. To solve the challenge of powering and communication in a brain implant with low end-end channel loss, we present Bi-Phasic Quasistatic Brain Communication (BP-QBC), achieving < 60dB worst-case end-to-end channel loss at a channel length of 55mm, by avoiding the transduction losses during field-modality conversion. BP-QBC utilizes dipole coupling based signal transmission within the brain tissue using differential excitation in the transmitter and differential signal pick-up at the receiver, and offers 41X lower power w.r.t. traditional Galvanic Human Body Communication at a carrier frequency of 1MHz, by blocking any DC current paths through the brain tissue. Since the electrical signal transfer through the human tissue is electro-quasistatic up to several 10's of MHz range, BP-QBC allows a scalable (bps-10Mbps) duty-cycled uplink from the implant to an external wearable. The power consumption in the BP-QBC TX is only 0.52uW at 1Mbps (with 1% duty cycling), which is within the range of harvested body-coupled power in the downlink from an external wearable to the brain implant. Furthermore, BP-QBC eliminates the need for sub-cranial repeaters, as it utilizes quasi-static electrical signals, thereby avoiding any transduction losses. Such low end-to-end channel loss with high data rates would find applications in neuroscience, brain-machine interfaces, electroceuticals and connected healthcare.

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