DocumentCode
1665789
Title
A mm-sized wirelessly powered and remotely controlled locomotive implantable device
Author
Yakovlev, Anatoly ; Pivonka, Daniel ; Meng, Teresa ; Poon, Ada
Author_Institution
Stanford Univ., Stanford, CA, USA
fYear
2012
Firstpage
302
Lastpage
304
Abstract
Fully autonomous implantable systems with locomotion can revolutionize medical technology, and include applications ranging from diagnostics to minimally invasive surgery. However, the extreme power requirements of fluid locomotion impose significant design challenges. Using highly efficient and scalable electromagnetic propulsion systems, these locomotive devices become possible. Recent work shows that mm-sized antennas in tissue achieve optimal power transfer efficiency in the low-GHz range. Combining this power transfer method with the highly efficient propulsion, a fully wireless locomotive implant capable of moving at 0.53cm/s has been realized in 65nm CMOS with a 2mm × 2mm receive antenna and a 0.6×1mm2 die size with a 2W 1.86GHz carrier. The design consists of an RF frontend, bandgap reference, regulator, demodulator, digital control, and configurable high-current drivers for the propulsion system.
Keywords
CMOS integrated circuits; biological tissues; biomedical electronics; demodulators; digital control; driver circuits; prosthetics; CMOS; RF frontend; bandgap reference; configurable high-current driver; demodulator; design challenge; digital control; electromagnetic propulsion system; fluid locomotion; frequency 1.86 GHz; fully autonomous implantable system; medical technology; minimally invasive surgery; power 2 W; regulator; remotely controlled locomotive implantable device; size 65 nm; tissue; wirelessly powered locomotive implantable device; Clocks; Demodulation; Fluids; Propulsion; Rectifiers; Regulators;
fLanguage
English
Publisher
ieee
Conference_Titel
Solid-State Circuits Conference Digest of Technical Papers (ISSCC), 2012 IEEE International
Conference_Location
San Francisco, CA
ISSN
0193-6530
Print_ISBN
978-1-4673-0376-7
Type
conf
DOI
10.1109/ISSCC.2012.6177023
Filename
6177023
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