A Highly Energy-Efficient Body-Coupled Transceiver Employing a Power-on-Demand Amplifier.

IF 10.5 Q1 ENGINEERING, BIOMEDICAL Cyborg and bionic systems (Washington, D.C.) Pub Date : 2023-01-01 DOI:10.34133/cbsystems.0030
Tao He, Yabin Zheng, Xu Liang, Jiamin Li, Longyang Lin, Wenfeng Zhao, Yongfu Li, Jian Zhao
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Abstract

Wearable body sensor nodes require massive data transmission under limited energy. However, it suffers from drastically varying channel loss, which limits its energy efficiency in practical scenarios. This paper presents a power-driven body-channel transceiver (TRX), whose power consumption can be adaptively tuned against varying channel loss. An out-band programmable gain amplifier (PGA) is proposed to save power and generate a quasi-linear correlation between PGA gain and power. By using the quasi-linear gain-power relationship, we propose an auto gain/power control technique to realize on-demand power consumption. In addition, a differential balanced transmitter is designed to eliminate base-band harmonics in on-off keying modulation and increase the power delivered by the transmitter (TX). The TX and receiver (RX) of the prototype were integrated into 1 chip and fabricated in a 55-nm complementary metal oxide semiconductor process. During the measurement, 2 chips were configured as TX and RX, respectively. Both the TX and the RX were wearable, powered by lithium batteries, and attached to the subject's hands. The prototype achieved a 5.25-Mbps data rate with 16-pJ/bit energy efficiency at a 1.5-m straight-line ground path distance. Furthermore, the proposed TRX maintained stable communication within a 1.5-m distance, while dynamically reducing power consumption.

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采用按需功率放大器的高能效体耦合收发器。
可穿戴身体传感器节点需要在有限的能量下传输大量数据。然而,它的信道损耗变化很大,这限制了它在实际应用中的能效。本文提出了一种功率驱动的体通道收发器(TRX),它的功耗可以根据不同的信道损耗自适应调整。提出了一种带外可编程增益放大器(PGA),以节省功率,并在PGA增益和功率之间产生准线性相关。利用准线性增益-功率关系,提出了一种自动增益/功率控制技术,以实现按需功耗。此外,差分平衡发射机被设计用于消除开关键控调制中的基带谐波,并增加发射机(TX)的传输功率。原型机的TX和接收器(RX)集成在一个芯片上,并在55纳米互补金属氧化物半导体工艺中制造。测量时,2个芯片分别配置为TX和RX。TX和RX都是可穿戴的,由锂电池供电,并固定在受试者的手上。该样机在1.5米直线接地路径距离上实现了5.25 mbps的数据速率和16 pj /bit的能量效率。此外,所提出的TRX在1.5 m距离内保持稳定通信,同时动态降低功耗。
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CiteScore
7.70
自引率
0.00%
发文量
0
审稿时长
21 weeks
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