Reduction of the six-dimensional q-form fields to the four-dimensional fields by coupling with gravity
Yong-Tao Lu, Heng Guo, Qun Wei, Bing Wei
Abstract
In this paper, we investigate the localization of various q-form fields on a codimension-two brane. In particular, the 0-form scalar field, the 1-form U(1) gauge vector field, and the 2-form Kalb-Ramond field are considered with gravitational coupling, where a coupling function F(R) is introduced into the six-dimensional actions of these fields. The function F(R) depends on the scalar curvature of the bulk. Within this framework, we find that the massless modes of different q-form fields can be localized on the thick brane for positive values of the coupling parameters t1 and t2. For the massive modes, the different q-form fields exhibit similar localization properties determined by the coupling parameter t2. When 0<t2<v2/24, the massive modes of these fields cannot be localized on the brane, while they may exist as the resonant modes. In the case t2=v2/24, a finite number of massive modes can be localized on the thick brane, and the number of localized modes increases with the coupling parameter t1. Finally, when t2>v2/24, the effective potentials associated with the Kaluza-Klein modes of these q-form fields form infinitely deep potential wells, so that all massive modes can be localized on the brane. Moreover, the tachyonic massive modes can always be excluded for different q-form fields.
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