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arXiv · hep-th/9305020

Gauge Theory of Relativistic Membranes

Abstract

In this paper we show that a relativistic membrane admits an equivalent representation in terms of the Kalb-Ramond gauge field $F_{μνρ}=\partial_{\,[\,μ}B_{νρ]}$ encountered in string theory. By `` equivalence '' we mean the following: if $x=X(ξ)$ is a solution of the classical equations of motion derived from the Dirac-Nambu-Goto action, then it is always possible to find a differential form of {\it rank three}, satisfying Maxwell-type equations. The converse proposition is also true. In the first part of the paper, we show that a relativistic membrane, regarded as a mechanical system, admits a Hamilton-Jacobi formulation in which the H-J function describing a family of classical membrane histories is given by $\displaystyle{F=dB=dS^1\wedge dS^2\wedge dS^3}$. In the second part of the paper, we introduce a {\it new} lagrangian of the Kalb-Ramond type which provides a {\it first order} formulation for both open and closed membranes. Finally, for completeness, we show that such a correspondence can be established in the very general case of a p-brane coupled to gravity in a spacetime of arbitrary dimensionality.

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BibTeXRIS

A. Aurilia, E. Spallucci. 1993-05-06. Gauge Theory of Relativistic Membranes. https://doi.org/10.1088/0264-9381%2F10%2F7%2F004

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