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18 - Low-power RF telemetry in biomedical implants

from Section III - Low-power RF and energy-harvesting circuits for biomedical systems

Published online by Cambridge University Press:  02 December 2010

Rahul Sarpeshkar
Affiliation:
Massachusetts Institute of Technology
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Summary

I could never accept findings based almost exclusively on mathematics. It ain't ignorance that causes all the trouble in this world. It's the things people know that ain't so.

Edwin Armstrong

Biomedical implants such as cochlear implants, retinal implants, brain implants, cardiac pacemakers, implanted defibrillators, and electronic pills require information to be wirelessly communicated from outside the body to inside the body and vice versa. Wired links from an external electronic unit to an implanted unit inside the body are prone to infection in the long term and are thus unlikely to meet approval by regulatory agencies such as the Food and Drug Administration (FDA). Thus, wireless communication is essential in such implants. in Chapter 16, we discussed how to wirelessly transmit power to such implants via an RF inductive near-field link. Near-field communication is important when the distance of communication, often 1 mm to 10 mm across the skin of the patient, is considerably less than the RF carrier wavelength. In contrast, in far-field communication systems used in most traditional radios, the communication distance is significantly in excess of the carrier wavelength. The relationship between near-field and far-field communication is discussed in quantitative depth in Chapter 17 on antennas and RF energy harvesting.

In this chapter, we shall first focus on how to communicate data via ultra-low-power near-field RF telemetry in such implants.

Type
Chapter
Information
Ultra Low Power Bioelectronics
Fundamentals, Biomedical Applications, and Bio-Inspired Systems
, pp. 489 - 528
Publisher: Cambridge University Press
Print publication year: 2010

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References

Lee, Thomas H.. The Design of CMOS Radio-Frequency Integrated Circuits. 2nd ed. (Cambridge, UK: New York: Cambridge University Press, 2004).Google Scholar
Razavi, Behzad. RF Microelectronics (Upper Saddle River, NJ: Prentice Hall, 1998).Google Scholar
Mandal, S. and Sarpeshkar, R.. Power-Efficient Impedance-Modulation Wireless Data Links for Biomedical Implants. IEEE Transactions on Biomedical Circuits and Systems, 2 (2008), 301–315.CrossRefGoogle ScholarPubMed
MeVay, A. C. H. and Sarpeshkar, R.. Predictive comparators with adaptive control. IEEE Transactions on Circuits and Systems II: Analog and Digital Signal Processing, 50 (2003), 579–588.CrossRefGoogle Scholar
Mead, Carver. Analog VLSI and Neural Systems (Reading, Mass.: Addison-Wesley, 1989).Google Scholar
Sarpeshkar, R., Lyon, R. F. and Mead, C. A.. A low-power wide-linear-range transconductance amplifier. Analog Integrated Circuits and Signal Processing, 13 (1997), 123–151.CrossRefGoogle Scholar
Bradley, P. D.. An ultra low power, high performance medical implant communication system (MICS) transceiver for implantable devices. IEEE Biomedical Circuits and Systems Conference (BioCAS), London, UK, 158–161, 2006.
Thoné, J., Radiom, S., Turgis, D., Carta, R., Gielen, G. and Puers, R.. Design of a 2 Mbps FSK near-field transmitter for wireless capsule endoscopy. Sensors & Actuators: A. Physical, (2008).
Yuce, M. R., Dissanayake, T. and Keong, H. C.. Wireless telemetry for electronic pill technology. Proceedings of the IEEE Conference on Sensors, Christchurch, New Zealand, 2009.Google Scholar
Buchegger, T., Oßberger, G., Reisenzahn, A., Hochmair, E., Stelzer, A. and Springer, A.. Ultra-wideband transceivers for cochlear implants. EURASIP Journal on Applied Signal Processing, 2005 (2005), 3069–3075.Google Scholar
O'Driscoll, S., Poon, A. and Meng, T. H.. A mm-sized implantable power receiver with adaptive link compensation. Digest of Technical Papers of the IEEE International Solid-State Circuits Conference (ISSCC), San Francisco, California, 294–295,295a, 2009.Google Scholar
Harrison, R. R., Watkins, P. T., Kier, R. J., Lovejoy, R. O., Black, D. J., Greger, B. and Solzbacher, F.. A low-power integrated circuit for a wireless 100-electrode neural recording system. IEEE Journal of Solid-State Circuits, 42 (2007), 123–133.CrossRefGoogle Scholar
Gabriel, S., Lau, R. W. and Gabriel, C.. The dielectric properties of biological tissues: III. Parametric models for the dielectric spectrum of tissues. Physics in Medicine and Biology, 41 (1996), 2271–2293.CrossRefGoogle ScholarPubMed
Italian National Research Council and Institute for Applied Physics. Available from: http://niremf.ifac.cnr.it/tissprop/.

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