Maxwell's Current in Mitochondria and Nerve
Robert S. Eisenberg

TL;DR
This paper introduces the Maxwell Current Law, a generalized form of Kirchhoff's Law that accounts for displacement current and applies to biological systems like mitochondria, offering a new physical perspective on ATP production.
Contribution
It generalizes Kirchhoff's Law to include displacement current, providing a universal, matter-independent framework for analyzing true electric currents in biological and physical systems.
Findings
Maxwell Current Law includes displacement current in all systems.
Reinterprets ATP production via a physical, charge-based perspective.
Clarifies the flow of ions and electrons in mitochondria using Maxwell's equations.
Abstract
Maxwell defined a true or total current in a way not widely used today. He said "... true electric current ... is not the same thing as the current of conduction but that the time-variation of the electric displacement must be taken into account in estimating the total movement of electricity". We show that true or total current is a universal property of electrodynamics independent of properties of matter. We use mathematics without a dielectric constant. The resulting Maxwell Current Law is a generalization of the Kirchhoff Law of Current used in circuit analysis, that also includes displacement current. The generalization is not a long-time low frequency approximation in contrast to traditional presentation of Kirchhoff's Law. The Maxwell Current Law does not require currents to be in circuits. It has been applied to three dimensional systems like the signaling system of nerve and…
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Taxonomy
TopicsFuel Cells and Related Materials
