数码产品
电气工程
能量收集
无线传感器网络
可穿戴技术
电信
计算机科学
可穿戴计算机
功率(物理)
嵌入式系统
工程类
计算机网络
量子力学
物理
作者
Luis Portilla,Kalaivanan Loganathan,Hendrik Faber,Aline Eid,Jimmy Hester,Manos M. Tentzeris,Marco Fattori,Eugenio Cantatore,Chen Jiang,Arokia Nathan,Gianluca Fiori,Taofeeq Ibn‐Mohammed,Thomas D. Anthopoulos,Vincenzo Pecunia
标识
DOI:10.1038/s41928-022-00898-5
摘要
Powering the increasing number of sensor nodes used in the Internet of Things creates a technological challenge. The economic and sustainability issues of battery-powered devices mean that wirelessly powered operation—combined with environmentally friendly circuit technologies—will be needed. Large-area electronics—which can be based on organic semiconductors, amorphous metal oxide semiconductors, semiconducting carbon nanotubes and two-dimensional semiconductors—could provide a solution. Here we examine the potential of large-area electronics technology in the development of sustainable, wirelessly powered Internet of Things sensor nodes. We provide a system-level analysis of wirelessly powered sensor nodes, identifying the constraints faced by such devices and highlighting promising architectures and design approaches. We then explore the use of large-area electronics technology in wirelessly powered Internet of Things sensor nodes, with a focus on low-power transistor circuits for digital processing and signal amplification, as well as high-speed diodes and printed antennas for data communication and radiofrequency energy harvesting. This Perspective explores the potential of large-area electronics in wirelessly powered sensor nodes for the Internet of Things, considering low-power circuits for digital processing and signal amplification, as well as diodes and printed antennas for data communication and radiofrequency energy harvesting.
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