Title :
Design, fabrication, and application of bio-implantable acoustic power transmission
Author :
Po-Jen Shih ; Wen-Pin Shih
Author_Institution :
Dept. of Civil & Environ. Eng., Nat. Univ. of Kaohsiung, Kaohsiung, Taiwan
fDate :
6/1/2010 12:00:00 AM
Abstract :
Fully packaged acoustic power receivers are introduced. They can provide electronic energy to other implanted devices by receiving an external acoustic wave generated from the skin surface of the subcutaneous tissue. Piezoelectric ceramics make the internal devices of the receivers, and they are directly charged, converting pressure into an extractable electrical energy. Moreover, cohesive gel is used to package the internal devices, and the packages are biocompatible and sufficiently soft to absorb the incident wave that is generated at the skin surface. Additionally, the effects of the shape of the scattering package and ratio of the stiffness of the package to that of the tissue are considered in designing the receivers. The dominant frequencies and the energy efficiency of the receivers are measured in the very streaky pork, which is used to simulate human subcutaneous tissue. The results indicate that the spherical packaging is preferable to the cubic packaging when buried in the muscular layer. The maximum efficiency of the power transmission is found to be -48.2 dB, using the spherical package in the muscular layer of the streaky pork.
Keywords :
acoustic receivers; biological tissues; biomedical equipment; crystal resonators; elastic constants; micromechanical devices; power transmission; skin; surface acoustic wave resonators; acoustic devices; bio-implantable acoustic power transmission; cubic packaging; extractable electrical energy; muscular layer; piezoelectric ceramics; piezoelectric resonators; power transmission; skin surface; stiffness; subcutaneous tissue; Acoustic applications; Acoustic devices; Acoustic waves; Ceramics; Electronics packaging; Fabrication; Piezoelectric devices; Power transmission; Skin; Surface acoustic wave devices; Acoustic devices; piezoelectric resonators; power transmission;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2010.2042568