Title :
Electromagnetic energy harvesting in a head-mountable DBS device using a circular PIFA
Author :
Hosain, Md Kamal ; Kouzani, Abbas Z.
Author_Institution :
Sch. of Eng., Deakin Univ., Geelong, VIC, Australia
Abstract :
A circular planar inverted-F antenna (PIFA) is designed and simulated at the industrial, scientific, and medical (ISM) band of 915 MHz for energy harvesting in a head-mountable deep brain stimulation device. Moreover, a rectifier is designed, and also the interaction of the PIFA with a rat head model is investigated. In the proposed PIFA, the top radiating layer is meandered, and a substrate of FR-4 is used. The radius and the height of the antenna are 10 mm and 1.8 mm, respectively. The bottom conductive layer works as a ground plate, and a superstrate of polyethylene reduces the electromagnetic penetration into the rat head. The resonance frequency of the designed antenna is 915 MHz with a bandwidth of 18 MHz at the return loss of -10 dB in free space. The antenna parameters (e.g. reflection coefficient, gain, radiation efficiency), electric field distribution, and SAR value are evaluated within a seven-layer rat head model by using the finite difference time domain EM simulation software XFdtd. The interactions of the antenna and the rat head model are studied in both functional and biological aspects.
Keywords :
UHF antennas; biomedical equipment; brain; energy harvesting; finite difference time-domain analysis; planar inverted-F antennas; rectennas; rectifiers; surgery; FR-4 substrate; SAR; antenna parameters; bandwidth 18 MHz; circular PIFA; circular planar inverted-F antenna; conductive layer; electric field distribution; electromagnetic energy harvesting; electromagnetic penetration; finite difference time domain EM simulation software XFdtd; frequency 915 MHz; ground plate; head-mountable DBS device; head-mountable deep brain stimulation device; industrial band; loss -10 dB; medical band; polyethylene; radiating layer; radiation efficiency; radius 10 mm; rectifier; reflection coefficient; resonance frequency; scientific band; seven-layer rat head model; size 1.8 mm; Antenna radiation patterns; Biological system modeling; Electric fields; Radio frequency; Rectifiers; Satellite broadcasting; DBS; PIFA; SAR; electromagnetic; energy harvesting; rectenna;
Conference_Titel :
Complex Medical Engineering (CME), 2013 ICME International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4673-2970-5
DOI :
10.1109/ICCME.2013.6548309