Wirelessly powered large-area electronics for the Internet of Things

被引:0
|
作者
Luis Portilla
Kalaivanan Loganathan
Hendrik Faber
Aline Eid
Jimmy G. D. Hester
Manos M. Tentzeris
Marco Fattori
Eugenio Cantatore
Chen Jiang
Arokia Nathan
Gianluca Fiori
Taofeeq Ibn-Mohammed
Thomas D. Anthopoulos
Vincenzo Pecunia
机构
[1] Fudan University,Frontier Institute of Chip and System
[2] King Abdullah University of Science and Technology (KAUST),KAUST Solar Center (KSC)
[3] University of Michigan,Department of Electrical Engineering and Computer Science
[4] Atheraxon Inc.,Electrical and Computer Engineering
[5] Georgia Institute of Technology,Integrated Circuits Group
[6] Eindhoven University of Technology,Department of Electronic Engineering
[7] Tsinghua University,Darwin College
[8] University of Cambridge,Dipartimento di Ingegneria dell’Informazione
[9] Università di Pisa,Computational Sustainability Research Group (CSRG), WMG
[10] The University of Warwick,School of Sustainable Energy Engineering
[11] Simon Fraser University,undefined
来源
Nature Electronics | 2023年 / 6卷
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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.
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页码:10 / 17
页数:7
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