Title :
Implantable Wireless Telemetry Boards for In Vivo Transocular Transmission
Author :
Chow, Eric Y. ; Yang, Chin-Lung ; Chlebowski, Arthur ; Moon, Sungwook ; Chappell, William J. ; Irazoqui, Pedro P.
Author_Institution :
Weldon Sch. of Biomed. Eng., Purdue Univ., West Lafayette, IN
Abstract :
We report live animal studies that verify and quantify successful transocular transmission of data from a miniature low-power implant. To minimize damage, implantation within layers of the eye requires an ultrasmall device on a scale of just a few millimeters on each side and less than 500 mum in thickness. A high-frequency transmitter integrated circuit (IC) was designed, fabricated, and bonded onto a board containing an antenna, matching network components, and interconnects. The transmitter must achieve sufficient efficiency to draw minimal power from the limited onboard storage array while outputting a sufficiently large signal to overcome tissue-induced attenuation. Two different versions of the system were developed, one using a low-temperature co-fired ceramic material for the substrate and the other using silicon. Animal studies performed using live rabbits followed by empirical measurements verified the feasibility of a wireless telemetry scheme for a low-power miniature ocular implant.
Keywords :
bioceramics; biomedical telemetry; eye; prosthetics; eye implantation; high-frequency transmitter integrated circuit; implantable wireless telemetry boards; in vivo transocular transmission; live animal studies; low-temperature cofired ceramic material; miniature low-power implant; ocular implant; rabbits; silicon; tissue-induced attenuation; transocular data transmission; Biological system modeling; biomedical applications of EM radiation; biomedical telemetry; implantable biomedical devices;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2008.2007338