用于生物植入物的250Mbps 24pJ/bit超宽带光通信系统

A. Marcellis, E. Palange, M. Faccio, Guido Di Patrizio Stanchieri, T. Constandinou
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引用次数: 9

摘要

本文提出了一种光通信系统,实现了超宽带启发的脉冲编码技术,用于新兴的高通量生物应用,如脑机接口。该解决方案采用亚纳秒激光脉冲,与最先进的技术相比,可以实现高比特率传输并降低功耗。整个架构包括一个发射机和一个采用脉冲半导体激光器的接收机和一个小敏感区光电二极管。这可以将CMOS集成到紧凑的硅足迹中(在0.18 μm技术中估计低于1 mm2)。本文提出的模拟电路是使用分立的现成元件实现的。这些器件为激光脉冲的产生、光电二极管信号的检测和调理提供偏置和驱动信号。此外,通过VHDL描述语言在FPGA板上实现了数据编解码过程的数字子系统。实验结果验证了所提出的系统的整体功能,使用发射器和接收器之间的扩散器来模拟皮肤/组织。这表明在高达250 Mbps的比特率下工作的能力,实现了低于10−9的误码率和低至24pJ/bit的功率效率。例如,这些结果可以实现以16位分辨率以16kHz采样的1000通道神经记录系统的传输。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A 250Mbps 24pJ/bit UWB-inspired optical communication system for bioimplants
This paper presents an optical communication system, implementing a UWB-inspired pulsed coding technique, for emerging high throughput bio-applications such as brain machine interfaces. The proposed solution employs sub-nanosecond laser pulses that, compared to the state-of-the-art, allows for high bit rate transmissions and reduced power consumption. The overall architecture consist of a transmitter and receiver that employ a pulsed semiconductor laser and a small sensitive area photodiode. This can allow for CMOS integration into a compact silicon footprint (estimated lower than 1 mm2 in a 0.18 μm technology). The analogue circuits presented herein have been implemented using discrete off-the-shelf components. These provide the bias and drive signals for laser pulse generation, photodiode signal detection and conditioning. Moreover, the digital sub-system for data coding and decoding processes have been implemented on a FPGA board through VHDL description language. Experimental results validate the overall functionality of the proposed system using a diffuser between transmitter and receiver to emulate skin/tissue. This shows the capability of operating at bit rates up to 250 Mbps achieving BER less than 10−9 and power efficiency as low as 24pJ/bit. These results enable, for example, the transmission of a 1000-channel neural recording system sampled at 16kHz with 16-bit resolution.
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