Olivera Mišković
Pontificia Universidad Católica de Valparaíso

Universidad Andrés Bello, Campus República Echaurren 227, Santiago, Chile

¿De verdad vivimos en un holograma?
XXV Aniversario de la correspondencia AdS/CFT

Hace 25 años, en noviembre de 1997, apareció en arXiv.org un manuscrito del físico argentino Juan Maldacena (U. Princeton), que introduciría un cambio ex- traordinario en la Física Teórica de Altas Energías. En el artículo se conjetura que las teorías de campos conformes (CFT) pueden ser vistas como un “holograma” de una teoría de gravedad (cuerdas) en el espacio anti-de Sitter (AdS), lo que se conoce como la correspondencia AdS/CFT. Hoy, 25 años más tarde, con más de 18.000 citas, el artículo de Maldacena se ha convertido en uno de los trabajos más citados de la historia. En esta charla abordaremos, en palabras simples, la idea y razones del porqué esta famosa correspondencia todavía tiene una influencia determinante en la física contemporánea.

Edgar Shaghoulian
University of California Santa Cruz

Online Zoom

Modular invariance and thermal effective field theory

Abstract: I will review some old perspectives and results on modular invariance in higher-dimensional conformal field theories (D > 2). I will then discuss how thermal effective field theory provides a new perspective on the problem, letting us relate the leading subextensive piece of the thermal entropy on a sphere to a Casimir energy.

Carlos Sopuerta
Universitat de València

Online Zoom

On the dynamics of isolated black holes

Abstract: There are two important physical processes around black holes that can be well described using relativistic perturbation theory: Scattering of electromagnetic and gravitational waves (and other fields) and quasinormal mode oscillations that take place, for instance, after the coalescence of a black hole binary. It is well-known that these physical processes, at first perturbative order, can be described in terms of gauge-invariant master functions. We have analyzed the space of all possible master functions for the case of non-rotating (Schwarzschild) black holes and we find two differentiated branches of solutions. One branch includes the known results: In the odd-parity case, the most general master function is an arbitrary linear combination of the Regge-Wheeler and the Cunningham-Price-Moncrief master functions whereas in the even-parity case it is an arbitrary linear combination of the Zerilli master function and another master function that is new to our knowledge. The other branch is very different since it includes an infinite collection of potentials which in turn lead to an independent collection master of functions which depend on the potential. We also find that of all them are connected via Darboux transformations. These transformations preserve physical quantities like the quasinormal mode frequencies and the infinite hierarchy of Korteweg-de Vries conserved quantities, revealing a new hidden symmetry in the description of the perturbations of Schwarzschild black holes: Darboux covariance. In this talk I will describe this hidden symmetry and how to apply it to the computation of scattering probabilities.