CWRU PAT Coffee Agenda

Tuesdays 10:30 - 11:30 | Fridays 11:30 - 12:30

+1 Partially Massless Graviton on Beyond Einstein Spacetimes.

bump   jbm120 +1

+1 Phase Transitions, Inhomogeneous Horizons and Second-Order Hydrodynamics.

bump   cxt282 +1

Showing votes from 2017-03-07 11:30 to 2017-03-10 12:30 | Next meeting is Tuesday May 19th, 10:30 am.

users

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astro-ph.CO

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gr-qc

  • Partially Massless Graviton on Beyond Einstein Spacetimes.- [PDF] - [Article]

    Laura Bernard, Cedric Deffayet, Kurt Hinterbichler, Mikael von Strauss
     

    We show that a partially massless graviton can propagate on a large set of spacetimes which are not Einstein spacetimes. Starting from a recently constructed theory for a massive graviton that propagates the correct number of degrees of freedom on an arbitrary spacetime, we first give the full explicit form of the scalar constraint responsible for the absence of a sixth degree of freedom. We then spell out generic conditions for the constraint to be identically satisfied, so that there is a scalar gauge symmetry which makes the graviton partially massless. These simplify if one assumes that spacetime is Ricci symmetric. Under this assumption, we find explicit non-Einstein spacetimes (some, but not all, with vanishing Bach tensors) allowing for the propagation of a partially massless graviton. These include in particular the Einstein static Universe.

  • Phase Transitions, Inhomogeneous Horizons and Second-Order Hydrodynamics.- [PDF] - [Article]

    Maximilian Attems, Yago Bea, Jorge Casalderrey-Solana, David Mateos, Miquel Triana, Miguel Zilhao
     

    We use holography to study the spinodal instability of a four-dimensional, strongly-coupled gauge theory with a first-order thermal phase transition. We place the theory on a cylinder in a set of homogeneous, unstable initial states. The dual gravity configurations are black branes afflicted by a Gergory-Laflamme instability. We numerically evolve Einstein's equations to follow the instability until the system settles down to some static, inhomogeneous black brane. The dual gauge theory states have constant temperature but non-constant energy density. We show that the time evolution of the instability and the final states are accurately described by second-order hydrodynamics. In the static limit, the latter reduces to a single, second-order, non-linear differential equation from which the inhomogeneous final states can be derived.

hep-ph

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