Reducing noises and enhancing signal-to-noise ratios (SNRs) have become critical for designing third-generation gravitational-wave (GW) detectors with a GW strain of less than 10−23/Hz. In this paper, we propose a potential third-generation GW detector based on autocorrelative weak-value amplification (AWVA) for GW detection with a strain of hg=4×10−25/Hz. In our scheme, a GW event induces a phase difference Δϕ by passing through an 11-bounce delay line, 10-km arm-length, zero-area Sagnac interferometer illuminated with a 1064-nm laser. Subsequently, Δϕ is amplified as the parameter of post-selection by choosing the appropriate pre-selected state and coupling strength in AWVA. In particular, we theoretically investigate the AWVA measurements for GW detection within the frequency band of 200 Hz ≤fg≤ 800 Hz, considering Gaussian noises with negative-decibel SNRs. The peak response of the AWVA sensitivity κ(fg) occurs at frequency fg,max = 500 Hz, which falls within the frequency band of interest of the current third-generation GW detectors. Our simulation results indicate that AWVA can demonstrate a measurable sensitivity of Θ(fg) within the frequency band of interest. Moreover, the robustness of WVA shows promising potential in mitigating the effects of Gaussian noises.
@article{arxiv.2306.06827,
title = {A potential third-generation gravitational-wave detector based on autocorrelative weak-value amplification},
author = {Jing-Hui Huang and Fei-Fan He and Xue-Ying Duan and Guang-Jun Wang and Xiang-Yun Hu},
journal= {arXiv preprint arXiv:2306.06827},
year = {2023}
}