Resonance of Gaussian electromagnetic field to the high frequency gravitational waves
arXiv:1411.1811 · doi:10.1007/s10773-016-2977-z
Abstract
We consider a Gaussian Beam (GB) resonant system for high frequency gravitational waves (HFGWs) detection. At present, we find the optimal signal strength in theory through setting the magnetic component of GB in a standard gaussian form. Under the synchro-resonance condition, we study the signal strength (i.e., transverse perturbative photon fluxes) from the relic HFGWs (predicted by ordinary inflationary model) and the braneworld HFGWs (from braneworld scenarios). Both of them would generate potentially detectable transverse perturbative photon fluxes (PPFs). Furthermore we find optimal system parameters and the relationship between frequency and effective width of energy fluxes accumulation.
International Journal of Theoretical Physics (2016)
References in corpus (8)
- Detection of B-mode Polarization in the Cosmic Microwave Background with Data from the South Pole Telescope
- Perturbative Photon Fluxes Generated by High-Frequency Gravitational Waves and Their Physical Effects
- Analytic spectrum of relic gravitational waves modified by neutrino free streaming and dark energy
- A gravitational wave window on extra dimensions
- An exact analytic spectrum of relic gravitational waves in an accelerating universe
- Relic Gravitational Waves with A Running Spectral Index and Its Constraints at High Frequencies
- Ringing the Randall-Sundrum braneworld: metastable gravity wave bound states
- Cosmic backgrounds of relic gravitons and their absolute normalization
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