4.6 Article

Expansion history-dependent oscillations in the scalar-induced gravitational wave background

出版社

IOP Publishing Ltd
DOI: 10.1088/1475-7516/2022/05/028

关键词

gravitational waves / theory; inflation; primordial gravitational waves (theory)

资金

  1. European Union [754496]
  2. European Research Council under the European Union [758792]
  3. European Research Council (ERC) [758792] Funding Source: European Research Council (ERC)

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This study investigates how the oscillatory frequency profile of the scalar-induced contribution to the stochastic gravitational wave background is influenced by the expansion history of the post-inflationary universe. The results show that the frequencies and amplitudes of the oscillatory contributions are affected by the equation of state, and provide information about both inflationary physics and the post-inflationary expansion history.
Oscillations in the frequency profile of the scalar-induced contribution to the stochastic gravitational wave background are a characteristic signal for small-scale features during inflation. We investigate how this oscillatory frequency profile is affected by the expansion history of the post-inflationary universe. Our results are applicable as long as the equation of state of the universe can be taken as constant during the period in which the gravitational waves are produced, and we compute the spectrum of gravitational waves induced by both sharp and resonant features, associated with oscillations in k and log(k), respectively. For resonant features, the frequencies of the oscillatory contributions to the gravitational wave spectrum are unaffected by the equation of state, but not their relative amplitudes, allowing one to extract information about both inflationary physics and the post-inflationary expansion history from the oscillatory pattern. For sharp features we find that the gravitational wave spectrum only exhibits prominent modulations as long as the propagation speed of density fluctuations is c(s) < 1, with a frequency larger by a factor c(s)(-1) than that of the scalar power spectrum. We find that the stiffer the equation of state, the larger the relative amplitude of the oscillations. In particular, a relative amplitude significantly higher than 20% is not achievable for the 'standard' case of radiation domination, and would be a smoking-gun signal of both nontrivial inflationary dynamics on small scales, and a post-inflationary universe not dominated by radiation.

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