Strings in homogeneous gravitational waves and null holography
Abstract
Homogeneous gravitational wave backgrounds arise as infinite momentum limits of many geometries with a well-understood holographic description. General global aspects of these geometries are discussed. Using exact CFT techniques, strings in pp-wave backgrounds supported by a Neveu-Schwarz flux are quantized. As in Euclidean , spectral flow and associated long strings are shown to be crucial in obtaining a complete spectrum. Holography is investigated using conformally flat coordinates analogous to those of the Poincar\'e patch in AdS. It is argued that the holographic direction is the light-cone coordinate , and that the holographic degrees of freedom live on a codimension-one screen at fixed . The usual conformal symmetry on the boundary is replaced by a representation of a Heisenberg-type algebra , hinting at a new class of field theories realizing this symmetry. A sample holographic computation of 2 and 3-point functions is provided and Ward identities are derived. A complementary screen at fixed is argued to be necessary in order to encode the vacuum structure.
Cite
@article{arxiv.hep-th/0204004,
title = {Strings in homogeneous gravitational waves and null holography},
author = {E. Kiritsis and B. Pioline},
journal= {arXiv preprint arXiv:hep-th/0204004},
year = {2009}
}
Comments
47 pages, 1 figure, Latex2e, JHEP3.cls; v3: global restructuration, sec 3.4, note and appendix E added, final version to appear in JHEP