New Inflation vs. Chaotic Inflation, Higher Degree Potentials and the Reconstruction Program in light of WMAP3
D. Boyanovsky, H. J. de Vega, C. M. Ho, N. G. Sanchez
Abstract
The CMB power spectra are studied for different families of single field new and chaotic inflation models in the effective field theory approach to inflation. We implement a systematic expansion in 1/Ne where Ne ~ 50 is the number of e-folds before the end of inflation. We study the dependence of the observables (ns, r and dns/d k) on the degree of the potential (2 n) and confront them to the WMAP3 and large scale structure data: this shows in general that fourth degree potentials (n=2) provide the best fit to the data; the window of consistency with the WMAP3 and LSS data narrows for growing n. New inflation models yield a good fit to the r and ns data in a wide range of field and parameter space. Small field inflation yields r<0.16 while large field inflation yields r>0.16 (for Ne=50). All members of the new inflation family predict a small but negative running -4(n+1)10-4< dns/d k <-2 10-4. A reconstruction program is carried out suggesting quite generallythat for ns consistent with the WMAP3 and LSS data and r<0.1 the symmetry breaking scale for new inflation is |ϕ0| ~ 10 MPl while the field scale at Hubble crossing is |ϕ50| ~ MPl.The family of chaotic models feature r>0.16 (for Ne=50) and only a restricted subset of chaotic models are consistent with the combined WMAP3 bounds on r, ns,dns/d k with a narrow window in field amplitude around |ϕ50| ~ 15 MPl.A measurement of r<0.16 (for Ne =50) will distinctly rule out a large class of chaotic scenarios and will favor new inflationary models. As a general consequence, new inflation emerges more favoured than chaotic inflation.
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