2014 · 10 citations · 9 references
Wireless CommunicationsEngineeringRadio FrequencyEnergy ConversionMicrowave TransmissionBiomedical EngineeringWireless Implantable DeviceElectromagnetic CompatibilityUltra-small EnergyNano CommunicationsMicroscale SystemMicrofluidicsHuman BodyElectrical EngineeringEnergy HarvestingWireless Power TransmissionAntennaMicrowave AntennaBiomedical SensorsBioelectronicsMagneto-inductive CommunicationsWireless Power TransferNear-field Measurement
Wireless power transfer using coupling in the near-field, in opposition to far-field, shows advantages concerning link efficiency, however the link performance is widely dependent on proper antenna positioning. The transmission of energy using a far-field link would be desirable in many applications, namely for powering biomedical devices placed inside the body. This paper presents results from a system that was designed to operate inside the human body and relies on a 3D antenna (500×500×500 μm <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">3</sup> ), fabricated using self-folding technology, operating in the low gigahertz range. Wireless power transmission and power conversion between 1 and 4 GHz were evaluated. Far-field wireless power transmission was demonstrated using the electrically small microantenna and a DC load of 1 kΩ.
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Physical limitations of omnidirectional antennas
DSpace@MIT (Massachusetts Institute of Technology) · 1948 · 2.2K citations · Full text