ID: gr-qc/0506089

A Measure of Cosmological Acceleration

June 16, 2005

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A Quantum Gravity Extension of the Inflationary Scenario

September 7, 2012

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Ivan Agullo, Abhay Ashtekar, William Nelson
Cosmology and Nongalactic As...

Since the standard inflationary paradigm is based on quantum field theory on classical space-times, it excludes the Planck era. Using techniques from loop quantum gravity, the paradigm is extended to a self-consistent theory from the Planck scale to the onset of slow roll inflation, covering some 11 orders of magnitude in energy density and curvature. This pre-inflationary dynamics also opens a small window for novel effects, e.g. a source for non-Gaussianities, which could e...

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Invariant Measure of the One Loop Quantum Gravitational Back-Reaction on Inflation

February 19, 2017

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S. P. NCKU, Taiwan Miao, N. C. U. Crete Tsamis, R. P. U. Florida Woodard
Cosmology and Nongalactic As...

We use dimensional regularization in pure quantum gravity on de Sitter background to evaluate the one loop expectation value of an invariant operator which gives the local expansion rate. We show that the renormalization of this nonlocal composite operator can be accomplished using the counterterms of a simple local theory of gravity plus matter, at least at one loop order. This renormalization completely absorbs the one loop correction, which accords with the prediction that...

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A New Theory of Stochastic Inflation

April 10, 1996

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Andrew University of Sydney, Australia Matacz
General Relativity and Quant...
Astrophysics
High Energy Physics - Phenom...

The stochastic inflation program is a framework for understanding the dynamics of a quantum scalar field driving an inflationary phase. Though widely used and accepted, there have over recent years been serious criticisms of this theory. In this paper I will present a new theory of stochastic inflation which avoids the problems of the conventional approach. Specifically, the theory can address the quantum-to-classical transition problem, and it will be shown to lead to a dram...

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A Note in Cosmology and Loop Quantum Gravity

August 21, 2000

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Pablo Universidad de la Republica, Uruguay Mora
General Relativity and Quant...

One possible description of the very early stages of the evolution of the universe is provided by Chaotic Inflationary Cosmology. For that model the role of the inflaton field is played by quantum gravitational effects. We study if such a picture may arise within the framework of Loop Quantum gravity by studying a simple model. While we were unable to reach definitive conclusions we believe the general approach proposed in this paper may prove fruitful in the future.

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Inflation from Quantum Geometry

June 18, 2002

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Martin Bojowald
General Relativity and Quant...
Astrophysics
High Energy Physics - Theory

Quantum geometry predicts that a universe evolves through an inflationary phase at small volume before exiting gracefully into a standard Friedmann phase. This does not require the introduction of additional matter fields with ad hoc potentials; rather, it occurs because of a quantum gravity modification of the kinetic part of ordinary matter Hamiltonians. An application of the same mechanism can explain why the present-day cosmological acceleration is so tiny.

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A Quantum Window Onto Early Inflation

May 16, 2017

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Robert J. Hardwick, Vincent Vennin, David Wands
Cosmology and Nongalactic As...

Inflation in the early Universe is one of the most promising probes of gravity in the high-energy regime. However, observable scales give access to a limited window in the inflationary dynamics. In this essay, we argue that quantum corrections to the classical dynamics of cosmological fields allow us to probe much earlier epochs of the inflationary phase and extend this window by many orders of magnitude. We point out that both the statistics of cosmological fluctuations at o...

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How the huge energy of quantum vacuum gravitates to drive the slow accelerating expansion of the Universe

March 1, 2017

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Qingdi Wang, Zhen Zhu, William G. Unruh
General Relativity and Quant...
High Energy Physics - Theory

We investigate the gravitational property of the quantum vacuum by treating its large energy density predicted by quantum field theory seriously and assuming that it does gravitate to obey the equivalence principle of general relativity. We find that the quantum vacuum would gravitate differently from what people previously thought. The consequence of this difference is an accelerating universe with a small Hubble expansion rate $H\propto \Lambda e^{-\beta\sqrt{G}\Lambda}\to ...

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Stochastic inflation at all order in slow-roll parameters: foundations

July 27, 2021

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Diego Cruces, Cristiano Germani
Cosmology and Nongalactic As...

In this paper we develop the formalism for the stochastic approach to inflation at all order in slow-roll parameters. This is done by including the momentum and Hamiltonian constraints into the stochastic equations. We then specialise to the widely used Starobinski approximation where interactions between IR and UV modes are neglected. We show that, whenever this approximation holds, no significant deviations are observed when comparing the two-point correlation functions (po...

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Stochastic dark energy from inflationary quantum fluctuations

October 21, 2017

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Dražen Glavan, Tomislav Prokopec, Alexei A. Starobinsky
Cosmology and Nongalactic As...

We study the quantum backreaction from inflationary fluctuations of a very light, non-minimally coupled spectator scalar and show that it is a viable candiate for dark energy. The problem is solved by suitably adapting the formalism of stochastic inflation. This allows us to self-consistently account for the backreaction on the background expansion rate of the Universe where its effects are large. This framework is equivalent to that of semiclassical gravity in which matter v...

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Resummations for Inflationary Quantum Gravity

January 9, 2025

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R. P. Woodard
General Relativity and Quant...
High Energy Physics - Theory

The continual production of gravitons during inflation endows loop corrections with secular logarithms which grow nonperturbatively large during a prolonged period of inflation. The physics behind these effects is reviewed, along with a catalog of the examples which have so far been found. Resummation can be accomplished by combining a variant of Starobinsky's stochastic formalism with a variant of the renormalization group. The issue of gauge independence is also addressed.

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