Resonant decay of gravitational waves into dark energy

被引:46
作者
Creminelli, Paolo [1 ,2 ]
Tambalo, Giovanni [3 ,4 ]
Vernizzi, Filippo [5 ]
Yingcharoenrat, Vicharit [3 ,4 ]
机构
[1] Abdus Salaam Int Ctr Theoret Phys, Str Costiera 11, I-34151 Trieste, Italy
[2] IFPU, Via Beirut 2, I-34014 Trieste, Italy
[3] SISSA, Via Bonomea 265, I-34136 Trieste, Italy
[4] INFN, Natl Inst Nucl Phys, Via Valerio 2, I-34127 Trieste, Italy
[5] Univ Paris Saclay, CEA, CNRS, Inst Phys Theor, F-91191 Gif Sur Yvette, France
关键词
dark energy theory; gravitational waves / theory; modified gravity;
D O I
10.1088/1475-7516/2019/10/072
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We study the decay of gravitational waves into dark energy fluctuations pi, taking into account the large occupation numbers. We describe dark energy using the effective field theory approach, in the context of generalized scalar-tensor theories. When the m(3)(3) (cubic Horndeski) and (m) over tilde (2)(4) (beyond Horndeski) operators are present, the gravitational wave acts as a classical background for pi and modifies its dynamics. In particular, pi fluctuations are described by a Mathieu equation and feature instability bands that grow exponentially. Focusing on the regime of small gravitational-wave amplitude, corresponding to narrow resonance, we calculate analytically the produced pi, its energy and the change of the gravitational-wave signal. The resonance is affected by pi self-interactions in a way that we cannot describe analytically. This effect is very relevant for the operator m(3)(3) and it limits the instability. In the case of the (m) over tilde (2)(4) operator self-interactions can be neglected, at least in some regimes. The modification of the gravitational-wave signal is observable for 3 x 10(-20) less than or similar to alpha(H) less than or similar to 10(-17) with a LIGO/Virgo-like interferometer and for 10(-16) less than or similar to alpha(H) less than or similar to 10(-10) with a LISA-like one.
引用
收藏
页数:33
相关论文
共 50 条
[41]   Primordial black holes as dark matter and gravitational waves from bumpy axion inflation [J].
Ozsoy, Ogan ;
Lalak, Zygmunt .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2021, (01)
[42]   Gravitational waves in Einstein-Cartan theory: On the effects of dark matter spin tensor [J].
Elizalde, Emilio ;
Izaurieta, Fernando ;
Riveros, Cristian ;
Salgado, Gonzalo ;
Valdivia, Omar .
PHYSICS OF THE DARK UNIVERSE, 2023, 40
[43]   Gravitational waves in New General Relativity [J].
Golovnev, Alexey ;
Semenova, A. N. ;
Vandeev, V. P. .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2024, (01)
[44]   Signatures of extra dimensions in gravitational waves [J].
Andriot, David ;
Gomez, Gustavo Lucena .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2017, (06)
[45]   The curvature effect on the gravitational collapse of interacting and non-interacting combination of dark matter and dark energy [J].
Abbas, S. Z. ;
Shah, H. H. ;
Chammam, W. ;
Sun, H. ;
Ul Haq, Wasim ;
Shah, H. .
INTERNATIONAL JOURNAL OF MODERN PHYSICS A, 2020, 35 (17)
[46]   Dark Energy in Light of Multi-Messenger Gravitational-Wave Astronomy [J].
Maria Ezquiaga, Jose ;
Zumalacarregui, Miguel .
FRONTIERS IN ASTRONOMY AND SPACE SCIENCES, 2018, 5
[47]   Holographic dark energy with varying gravitational constant in Horava-Lifshitz cosmology [J].
Setare, M. R. ;
Jamil, Mubasher .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2010, (02)
[48]   Decay of dark energy into dark matter in a metric f (R) gravity: Effective running Hubble constant [J].
Montani, Giovanni ;
De Angelis, Mariaveronica ;
Dainotti, Maria Giovanna .
PHYSICS OF THE DARK UNIVERSE, 2025, 49
[49]   Direct detection of gravitational waves can measure the time variation of the Planck mass [J].
Amendola, Luca ;
Sawicki, Ignacy ;
Kunz, Martin ;
Saltas, Ippocratis D. .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2018, (08)
[50]   Gravitational effects on inflaton decay [J].
Ema, Yohei ;
Jinno, Ryusuke ;
Mukaida, Kyohei ;
Nakayama, Kazunori .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2015, (05)