DocumentCode :
110832
Title :
Simplified Design Equations for Class-E Neural Prosthesis Transmitters
Author :
Troyk, Philip ; Zhe Hu
Author_Institution :
Dept. of Biomed. Eng., Illinois Inst. of Technol., Chicago, IL, USA
Volume :
60
Issue :
5
fYear :
2013
fDate :
May-13
Firstpage :
1414
Lastpage :
1421
Abstract :
Extreme miniaturization of implantable electronic devices is recognized as essential for the next generation of neural prostheses, owing to the need for minimizing the damage and disruption of the surrounding neural tissue. Transcutaneous power and data transmission via a magnetic link remains the most effective means of powering and controlling implanted neural prostheses. Reduction in the size of the coil, within the neural prosthesis, demands the generation of a high-intensity radio frequency magnetic field from the extracoporeal transmitter. The Class-E power amplifier circuit topology has been recognized as a highly effective means of producing large radio frequency currents within the transmitter coil. Unfortunately, design of a Class-E circuit is most often fraught by the need to solve a complex set of equations so as to implement both the zero-voltage-switching and zero-voltage-derivative-switching conditions that are required for efficient operation. This paper presents simple explicit design equations for designing the Class-E circuit topology. Numerical design examples are presented to illustrate the design procedure.
Keywords :
biological tissues; neurophysiology; numerical analysis; power amplifiers; prosthetic power supplies; topology; zero voltage switching; class-E neural prosthesis transmitters; class-E power amplifier circuit topology; coil size; data transmission; extracoporeal transmitter; high-intensity radio frequency magnetic field; implantable electronic devices; magnetic link; numerical design; simplified design equations; surrounding neural tissue; transcutaneous power; zero-voltage-derivative-switching; Capacitors; Coils; Equations; Mathematical model; Transistors; Zero voltage switching; Class-E; inductive coupling; neural prosthesis implant; transmitter; Amplifiers, Electronic; Miniaturization; Neural Prostheses; Prosthesis Design; Telemetry;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2012.2237172
Filename :
6400236
Link To Document :
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