An Ultra-Wideband-Inspired System-on-Chip for an Optical Bidirectional Transcutaneous Biotelemetry

A. Marcellis, Guido Di Patrizio Stanchieri, E. Palange, M. Faccio, T. Constandinou
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引用次数: 7

Abstract

This paper describes an integrated communication system, implementing a UWB-inspired pulsed coding technique, for an optical transcutaneous biotelemetry. The system consists of both a transmitter and a receiver facilitating a bidirectional link. The transmitter includes a digital data coding circuit and is capable of generating sub-nanosecond current pulses and directly driving an off-chip semiconductor laser diode including all bias and drive circuits. The receiver includes an integrated compact PN-junction photodiode together with signal conditioning, detection and digital data decoding circuits to enable a high bit rate, energy efficient communication. The proposed solution has been implemented in a commercially available 0.35 μm CMOS technology provided by AMS. The circuit core occupies a compact silicon footprint of less than 0.13 mm2(only 113 transistors and 1 resistor). Post-layout simulations have validated the overall system operation demonstrating the ability to operate at bit rates up to 500 Mbps with pulse widths of 300 ps with a total power efficiency (transmitter + receiver) lower than 74 pJ/bit. This makes the system ideally suited for demanding applications that require high bit rates at extremely low energy levels. One such application is implantable brain machine interfaces requiring high uplink bitrates to transmit recorded data externally through a transcutaneous communication channel.
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用于光学双向经皮生物遥测的超宽带启发片上系统
本文描述了一种集成通信系统,实现了超宽带启发的脉冲编码技术,用于光学经皮生物遥测。该系统由发射器和接收器组成,便于双向连接。发射器包括数字数据编码电路,能够产生亚纳秒电流脉冲并直接驱动片外半导体激光二极管,包括所有偏置和驱动电路。该接收器包括集成的紧凑型pn结光电二极管以及信号调理、检测和数字数据解码电路,以实现高比特率、节能通信。该解决方案已在AMS提供的商用0.35 μm CMOS技术上实现。电路核心占用了小于0.13 mm2的紧凑硅足迹(只有113个晶体管和1个电阻)。布局后的仿真验证了整个系统的运行,表明系统能够以高达500 Mbps的比特率运行,脉冲宽度为300 ps,总功率效率(发射器+接收器)低于74 pJ/bit。这使得该系统非常适合要求在极低能量水平下需要高比特率的苛刻应用。一个这样的应用是植入式脑机接口,需要高上行比特率,通过经皮通信通道向外部传输记录的数据。
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