» Articles » PMID: 19693079

An Upper Limit on the Stochastic Gravitational-wave Background of Cosmological Origin

Overview
Journal Nature
Specialty Science
Date 2009 Aug 21
PMID 19693079
Citations 10
Authors
Affiliations
Soon will be listed here.
Abstract

A stochastic background of gravitational waves is expected to arise from a superposition of a large number of unresolved gravitational-wave sources of astrophysical and cosmological origin. It should carry unique signatures from the earliest epochs in the evolution of the Universe, inaccessible to standard astrophysical observations. Direct measurements of the amplitude of this background are therefore of fundamental importance for understanding the evolution of the Universe when it was younger than one minute. Here we report limits on the amplitude of the stochastic gravitational-wave background using the data from a two-year science run of the Laser Interferometer Gravitational-wave Observatory (LIGO). Our result constrains the energy density of the stochastic gravitational-wave background normalized by the critical energy density of the Universe, in the frequency band around 100 Hz, to be <6.9 x 10(-6) at 95% confidence. The data rule out models of early Universe evolution with relatively large equation-of-state parameter, as well as cosmic (super)string models with relatively small string tension that are favoured in some string theory models. This search for the stochastic background improves on the indirect limits from Big Bang nucleosynthesis and cosmic microwave background at 100 Hz.

Citing Articles

LIGO and the opening of a unique observational window on the universe.

Kalogera V, Lazzarini A Proc Natl Acad Sci U S A. 2017; 114(12):3017-3025.

PMID: 28283663 PMC: 5373410. DOI: 10.1073/pnas.1612908114.


coherence microscopy [Invited].

Thouvenin O, Grieve K, Xiao P, Apelian C, Boccara A Biomed Opt Express. 2017; 8(2):622-639.

PMID: 28270972 PMC: 5330590. DOI: 10.1364/BOE.8.000622.


Gravitational Wave Detection by Interferometry (Ground and Space).

Pitkin M, Reid S, Rowan S, Hough J Living Rev Relativ. 2017; 14(1):5.

PMID: 28163618 PMC: 5253843. DOI: 10.12942/lrr-2011-5.


Gravitational waves: search results, data analysis and parameter estimation: Amaldi 10 Parallel session C2.

Astone P, Weinstein A, Agathos M, Bejger M, Christensen N, Dent T Gen Relativ Gravit. 2015; 47(2):11.

PMID: 26412861 PMC: 4579869. DOI: 10.1007/s10714-014-1796-x.


Advanced technologies for future ground-based, laser-interferometric gravitational wave detectors.

Hammond G, Hild S, Pitkin M J Mod Opt. 2015; 61(sup1):S10-S45.

PMID: 25705087 PMC: 4311950. DOI: 10.1080/09500340.2014.920934.


References
1.
Grishchuk , Sidorov . Squeezed quantum states of relic gravitons and primordial density fluctuations. Phys Rev D Part Fields. 1990; 42(10):3413-3421. DOI: 10.1103/physrevd.42.3413. View

2.
. Limits on direct detection of gravitational waves. Phys Rev D Part Fields. 1994; 50(2):1157-1160. DOI: 10.1103/physrevd.50.1157. View

3.
Smith T, Pierpaoli E, Kamionkowski M . New cosmic microwave background constraint to primordial gravitational waves. Phys Rev Lett. 2006; 97(2):021301. DOI: 10.1103/PhysRevLett.97.021301. View

4.
Siemens X, Mandic V, Creighton J . Gravitational-wave stochastic background from cosmic strings. Phys Rev Lett. 2007; 98(11):111101. DOI: 10.1103/PhysRevLett.98.111101. View