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arXiv · 1209.0894

Second-Order Formalism for 3D Spin-3 Gravity

Abstract

A second-order formalism for the theory of 3D spin-3 gravity is considered. Such a formalism is obtained by solving the torsion-free condition for the spin connection ω^a_μ, and substituting the result into the action integral. In the first-order formalism of the spin-3 gravity defined in terms of SL(3,R) X SL(3,R) Chern-Simons (CS) theory, however, the generalized torsion-free condition cannot be easily solved for the spin connection, because the vielbein e^a_μ itself is not invertible. To circumvent this problem, extra vielbein-like fields e^a_{μν} are introduced as a functional of e^a_μ. New set of affine-like connections Γ_{μM}^N are defined in terms of the metric-like fields, and a generalization of the Riemann curvature tensor is also presented. In terms of this generalized Riemann tensor the action integral in the second-order formalism is expressed. The transformation rules of the metric and the spin-3 gauge field under the generalized diffeomorphims are obtained explicitly. As in Einstein gravity, the new affine-like connections are related to the spin connection by a certain gauge transformation, and a gravitational CS term expressed in terms of the new connections is also presented.

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Ippei Fujisawa, Ryuichi Nakayama. 2012-12-13. Second-Order Formalism for 3D Spin-3 Gravity. https://doi.org/10.1088/0264-9381%2F30%2F3%2F035003

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