Galante-Sempere David, Ramos-Valido Dailos, Khemchandani Sunil Lalchand, Del Pino Javier
Institute for Applied Microelectronics (IUMA), Department of Electronics and Automatic Engineering, University of Las Palmas de Gran Canaria (ULPGC), Campus Universitario de Tafira, 35017 Las Palmas de Gran Canaria, Spain.
Sensors (Basel). 2022 Feb 21;22(4):1662. doi: 10.3390/s22041662.
Wireless sensor network (WSN) applications are under extensive research and development due to the need to interconnect devices with each other. To reduce latency while keeping very low power consumption, the implementation of a wake-up receiver (WuR) is of particular interest. In WuR implementations, meeting high performance metrics is a design challenge, and the obtention of high-sensitivity, high data rate, low-power-consumption WuRs is not a straightforward procedure. The focus of our proposals is centered on power consumption and area reduction to provide high integrability and maintain a low cost-per-node, while we simultaneously improve circuit sensitivity. Firstly, we present a two-stage design based on a feedback technique and improve the area use, power consumption and sensitivity of the circuit by adding a current-reuse approach. The first solution is composed of a feedback amplifier, two op-amps plus a low-pass filter. The circuit achieves a sensitivity of -63.2 dBm with a power consumption of 6.77 µA and an area as low as 398 × 266 µm. With the current-reuse feedback amplifier, the power consumption is halved in the second circuit (resulting in 3.63 µA), and the resulting circuit area is as low as 262 × 262 µm. Thanks to the nature of the circuit, the sensitivity is improved to -75 dBm. This latter proposal is particularly suitable in applications where a fully integrated WuR is desired, providing a reasonable sensitivity with a low power consumption and a very low die footprint, therefore facilitating integration with other components of the WSN node. A thorough discussion of the most relevant state-of-the-art solutions is presented, too, and the two developed solutions are compared to the most relevant contributions available in the literature.
由于需要实现设备之间的互连,无线传感器网络(WSN)应用正处于广泛的研究和开发之中。为了在保持极低功耗的同时减少延迟,唤醒接收器(WuR)的实现尤为重要。在WuR实现中,满足高性能指标是一项设计挑战,获得高灵敏度、高数据速率、低功耗的WuR并非易事。我们提议的重点集中在降低功耗和减小面积,以提供高集成度并保持低节点成本,同时提高电路灵敏度。首先,我们提出一种基于反馈技术的两级设计,并通过采用电流复用方法来改善电路的面积利用、功耗和灵敏度。第一种方案由一个反馈放大器、两个运算放大器和一个低通滤波器组成。该电路实现了-63.2 dBm的灵敏度,功耗为6.77 µA,面积低至398×266 µm。在第二个电路中,采用电流复用反馈放大器后,功耗减半(降至3.63 µA),所得电路面积低至262×262 µm。由于电路的特性,灵敏度提高到了-75 dBm。后一种方案特别适用于需要完全集成WuR的应用,它能在低功耗和非常小的芯片面积下提供合理的灵敏度,从而便于与WSN节点的其他组件集成。文中还对最相关的现有技术解决方案进行了深入讨论,并将这两种开发的解决方案与文献中最相关的成果进行了比较。