Negative energy, superluminosity, and holography
- 14 September 1999
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review D
- Vol. 60 (8) , 084006
- https://doi.org/10.1103/physrevd.60.084006
Abstract
The holographic connection between large N super Yang-Mills (SYM) theory and gravity in anti–de Sitter (AdS) space requires unfamiliar behavior of the SYM theory in the limit that the curvature of the AdS geometry becomes small. The paradoxical behavior includes superluminal oscillations and negative energy density. These effects typically occur in the SYM description of events which take place far from the boundary of AdS when the signal from the event arrives at the boundary. The paradoxes can be resolved by assuming a very rich collection of hidden degrees of freedom of the SYM theory which store information but give rise to no local energy density. These degrees of freedom, called precursors, are needed to make possible sudden apparently acausal energy momentum flows. Such behavior would be impossible in classical field theory as a consequence of the positivity of the energy density. However we show that these effects are not only allowed in quantum field theory but that we can model them in free quantum field theory.Keywords
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This publication has 8 references indexed in Scilit:
- What do CFTs tell us about anti-de Sitter spacetimes?Journal of High Energy Physics, 1999
- Black holes, shock waves, and causality in the AdS/CFT correspondenceJournal of High Energy Physics, 1999
- Bulk versus boundary dynamics in anti–de Sitter spacetimePhysical Review D, 1999
- Gauge theory correlators from non-critical string theoryPhysics Letters B, 1998
- Anti de Sitter space and holographyAdvances in Theoretical and Mathematical Physics, 1998
- The large $N$ limit of superconformal field theories and supergravityAdvances in Theoretical and Mathematical Physics, 1998
- The world as a hologramJournal of Mathematical Physics, 1995
- Gravitational radiation in black-hole collisions at the speed of light. I. Perturbation treatment of the axisymmetric collisionPhysical Review D, 1992