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Quantum Gravity

Group “Fundamental Interactions”

Quantum Gravity The quantum gravity team works on a major open question in fundamental physics: how to reconcile general relativity and quantum mechanics. Since gravity describes the dynamics of space-time, this amounts to studying the quantum behavior of time and space.

Loop quantum gravity (LQG) is a major approach aimed at answering this question. In this field, the CPT is at the very forefront, and the team works on the formal definition of the theory, its mathematical aspects, and its applications.

Among the formal developments, the group studies the properties of coherent semiclassical states, which describe quantum geometry, and develops a reformulation of the theory in terms of twistors, which should simplify its application.

The main applications are primordial cosmology and black hole physics. The objective of this research is to identify observable phenomena that could make it possible to test the theory. In the context of cosmology, LQG makes it possible to explore the region close to the initial singularity predicted by classical general relativity. The theory indicates that the current expansion phase of the universe was preceded by a phase of contraction.

LQG also allows the study of the high-curvature region inside black holes (the “Planck star”) and suggests that the central singularity is avoided thanks to quantum effects. The black hole thus becomes unstable: it can explode through a quantum tunneling process, similar to conventional nuclear decay. The team studies the signals produced in this way, which could correspond to observed phenomena such as very high-energy gamma rays or Fast Radio Bursts, possibly caused by explosions of primordial black holes. The quantum structure of space-time is also relevant for studying the thermal properties of black holes and the “information paradox”. The group is at the forefront of the analysis of these questions.

Team's directory

BRUNO Matteo

Post Ph.D.

Contact
DIAZ Juan-Manuel

Ph.D.

Contact
DONA Pietro

Research teacher

Contact
KRAJEWSKI Thomas

Research teacher

+33.4.91.26.95.53

Contact
PEREZ Alejandro

Research teacher

Team leader « Quantum Gravity »

+33.4.91.26.97.98

Contact
PIOVESAN Pierre

Ph.D.

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ROVELLI Carlo

Research teacher emeritus

+33.4.91.26.96.44

Contact
SPEZIALE Simone

Researcher

Unit leader « Interactions fondamentales »

+33.4.91.26.95.47

Contact
SREERAM Gowrisankar

Ph.D.

Contact
YAN Ruijue

Ph.D.

Contact

Team's publications

On Spinfoam Models in Large Spin Regime

Muxin Han

Classical and Quantum Gravity, 2014, 31 (1), pp.015004. (10.1088/0264-9381/31/1/015004)

Journal articles


Why are the effective equations of loop quantum cosmology so accurate?

Carlo Rovelli, Edward Wilson-Ewing

Physical Review D, 2014, 90 (2), pp.023538. (10.1103/PhysRevD.90.023538)

Journal articles


Lorentzian Connes Distance, Spectral Graph Distance and Loop Gravity

Carlo Rovelli

2014

Preprint, Working paper


Aristotle’s Physics: A Physicist’s look

Carlo Rovelli

2013

Preprint, Working paper


The Chiral Structure of Loop Quantum Gravity

Wolfgang Martin Wieland

Relativité Générale et Cosmologie Quantique [gr-qc]. Aix-Marseille Université, 2013. Français. (NNT : )

HAL

Thesis


Hamiltonian spinfoam gravity

Wolfgang Martin Wieland

Classical and Quantum Gravity, 2013, 31 (2), pp.025002. (10.1088/0264-9381/31/2/025002)

Journal articles


Commuting Simplicity and Closure Constraints for 4D Spin Foam Models

Muxin Han, Thomas Thiemann

Classical and Quantum Gravity, 2013, 30 (23), pp.235024. (10.1088/0264-9381/30/23/235024)

Journal articles


Spinfoam fermions

Eugenio Bianchi, Muxin Han, Elena Magliaro, Claudio Perini, Carlo Rovelli, Wolfgang Wieland

Classical and Quantum Gravity, 2013, 30 (23), pp.235023. (10.1088/0264-9381/30/23/235023)

Journal articles


A Homogeneous Model of Spinfoam Cosmology

Julian Rennert, David Sloan

Classical and Quantum Gravity, 2013, 30 (23), pp.235019. (10.1088/0264-9381/30/23/235019)

Journal articles


Coupling and thermal equilibrium in general-covariant systems

Goffredo Chirco, Hal M. Haggard, Carlo Rovelli

Physical Review D, 2013, 88 (8), pp.084027. (10.1103/PhysRevD.88.084027)

Journal articles