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We follow a low-energy effective theory approach to identify the general class of theories that describes a vector field (of unconstrained norm) coupled to gravity.
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2005
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E. A. Lim, “Can we see Lorentz-violating vector fields in the CMB?,” Phys. Rev. D 71
2005
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G. Dvali, M. Papucci and M. D. Schwartz, “Infrared Lorentz violation and slowly instantaneous electricity,” Phys. Rev. Lett. 94
2005
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G. Gabadadze and L. Grisa, “Lorentz-violating massive gauge and gravitational fields,” Phys. Lett. B 617
2005
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C. Armendariz-Picon and E. A. Lim, “Haloes of k-essence,” JCAP 0508
2005
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S. Kanno and J. Soda, “Lorentz violating inflation,” Phys. Rev. D 74
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2008
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J. B. Jimenez and A. L. Maroto, “A cosmic vector for dark energy,” Phys. Rev. D 78
2008
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2008
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T. S. Koivisto and D. F. Mota, “Vector Field Models of Inflation and Dark Energy,” JCAP 0808
2008
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2008
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P. Horava, “Quantum Gravity at a Lifshitz Point,” Phys. Rev. D 79
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C. Charmousis, G. Niz, A. Padilla and P. M. Saffin, “Strong coupling in Horava gravity,” JHEP 0908
2009
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2009
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V.A. Kostelecky and R. Potting, “Gravity from spontaneous Lorentz violation,” Phys. Rev. D 79
2009
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A. Golovnev, V. Mukhanov and V. Vanchurin, “Vector Inflation,” JCAP 0806
2068
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