English

M-flation: Inflation From Matrix Valued Scalar Fields

High Energy Physics - Theory 2010-10-13 v3 Cosmology and Nongalactic Astrophysics High Energy Physics - Phenomenology

Abstract

We propose an inflationary scenario, M-flation, in which inflation is driven by three N×NN\times N hermitian matrices Φi,i=1,2,3\Phi_i, i=1,2,3. The inflation potential of our model, which is strongly motivated from string theory, is constructed from Φi\Phi_{i} and their commutators. We show that one can consistently restrict the classical dynamics to a sector in which the Φi\Phi_i are proportional to the N×NN\times N irreducible representations of SU(2). In this sector our model effectively behaves as an N-flation model with 3N23 N^2 number of fields and the effective inflaton field has a super-Planckian field value. Furthermore, the fine-tunings associated with unnaturally small couplings in the chaotic type inflationary scenarios are removed. Due to the matrix nature of the inflaton fields there are 3N213N^2-1 extra scalar fields in the dynamics. These have the observational effects such as production of iso-curvature perturbations on cosmic microwave background. Moreover, the existence of these extra scalars provides us with a natural preheating mechanism and exit from inflation. As the effective inflaton field can traverse super-Planckian distances in the field space, the model is capable of producing a considerable amount of gravity waves that can be probed by future CMB polarization experiments such as PLANCK, QUIET and CMBPOL.

Keywords

Cite

@article{arxiv.0903.1481,
  title  = {M-flation: Inflation From Matrix Valued Scalar Fields},
  author = {Amjad Ashoorioon and Hassan Firouzjahi and M. M. Sheikh-Jabbari},
  journal= {arXiv preprint arXiv:0903.1481},
  year   = {2010}
}

Comments

minor changes, the counting of the alpha and beta modes are corrected, references added

R2 v1 2026-06-21T12:19:41.563Z