Higher-spin kinematics & no ghosts on quantum space-time in Yang-Mills matrix models
Abstract
A classification of bosonic on- and off-shell modes on a cosmological quantum space-time solution of the IIB matrix model is given, which leads to a higher-spin gauge theory. In particular, the no-ghost-theorem is established. The physical on-shell modes consist of 2 towers of higher-spin modes, which are effectively massless but include would-be massive degrees of freedom. The off-shell modes consist of 4 towers of higher-spin modes, one of which was missing previously. The noncommutativity leads to a cutoff in spin, which disappears in the semi-classical limit. An explicit basis allows to obtain the full propagator, which is governed by a universal effective metric. The physical metric fluctuations arise from would-be massive spin 2 modes, which were previously shown to include the linearized Schwarzschild solution. Due to the relation with super-Yang-Mills, this is expected to define a consistent quantum theory in 3+1 dimensions, which includes gravity.
Cite
@article{arxiv.1910.00839,
title = {Higher-spin kinematics & no ghosts on quantum space-time in Yang-Mills matrix models},
author = {Harold C. Steinacker},
journal= {arXiv preprint arXiv:1910.00839},
year = {2021}
}
Comments
29+17 pages, 1 figure. V2: exceptional scalar modes identified, version to appear in ATMP