By John P. Wikswo (auth.), Samuel J. Williamson, Manfried Hoke, Gerhard Stroink, Makoto Kotani (eds.)
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Extra resources for Advances in Biomagnetism
RECENT REVIEW ARTICLES for further references Hoke, M. (1988). , VCH Verlagsgesellschaft mbH, Weinheim, pp. 287-335. , and Knuutila, J. (1989). SQUID Magnetometers for Low Frequency Applications, J. Low Temp. Physics, 76, pp. 287-386. , and Katila, T. (1988). Biomagnetism, in Encyclopedia of Medical Devices and Instrumentation, John G. , John Wiley and Sons, New York, pp. 303-322. , and Kaufman, 1. (1988). , Tokyo Denki University Press, Tokyo, pp. 18-25. 32 FUNDAMENTALS ON NEUROMAGNETISM Gian Luca Romani Istituto di Fisica Medica, Universita' "G.
The magnetic field at an instant in time leaves the head at one location and reenters at another, with the actual locations depending on the specific stimulus used. If the field strength were plotted as a map, there would be a single, localized maximum, and a corresponding, symmetric minimum. Referring to our two-dipole source of a propagating nerve action potential (Figs. 9a and lOa) and the single-dipole source of a propagating cardiac action potential (Figs. lla and lId), we see that Fig. 13a suggests that the EF is produced by a single dipole.
Figure 8. a) A motor neuron that connects a neuron from the brain to a muscle fiber. b) A schematic representation of a motor neuron, with the input amplifier connected to the output stimulator by an electrical cable consisting of an intracellular resistance Ri, an extracellular resistance Re, and a membrane element z. c) An overlysimplified circuit for Z that exhibits the voltage-dependent changes in sodium and potassium conductance associated with a nerve action potential. The values of the components correspond to a 1 mm by 1 mm patch of membrane.
Advances in Biomagnetism by John P. Wikswo (auth.), Samuel J. Williamson, Manfried Hoke, Gerhard Stroink, Makoto Kotani (eds.)