论文标题

有效描述悬浮镜与空腔灯光 - Q增强的限制,因为正常模式通过光弹簧分裂 -

Effective description of a suspended mirror coupled to cavity light -Limitations of Q-enhancement due to normal mode splitting by an optical spring-

论文作者

Sugiyama, Yuuki, Shichijo, Tomoya, Matsumoto, Nobuyuki, Matsumura, Akira, Miki, Daisuke, Yamamoto, Kazuhiro

论文摘要

摆锤长期以来一直用作力传感器,因为它们最终的耗散(高质量因子)特征。它们被广泛用于测量重力常数,重力波的检测以及测定超轻暗物质。此外,预计将通过对宏观摆动进行量子对照来证明重力的量子性质。最近,我们证明了可以使用光弹簧生成两个摆之间的量子纠缠[D. Miki,N。Matsumoto,A。Matsumura,T。Shichijo,Y。Sugiyama,K。Yamamoto和N. Yamamoto,Arxiv:2210.13169(2022)];但是,我们忽略了光弹簧可以通过在具有相对较高耗散的旋转模式之间施加正常模式分裂来减少质量因子(Q因子)。本文中,我们分析了一个由使用梁(悬浮镜,即摆)和光弹簧悬挂的气缸组成的系统,以考虑正常模式分裂。 Q因子的还原仅由梁参数确定:镜子的半径与梁的长度的比率,以及在没有腔光子的情况下旋转模式与摆模式的频率之比。在我们的分析中,我们发现还原的还原因子$ 4.38 $,这与Matsumoto \ textit {et al。} [N.的实验结果一致。 Matsumoto,S。B. Catan $ \ tilde {\ text {o}} $ - Lopez,M。Sugawara,S。Suzuki,N。Abe,K。Komori,Y。Michimura,Y。Aso和K. Edamatsu,物理。莱特牧师。 122,071101(2019)]。我们的分析表明,考虑旋转自由度的现实摆系统,可以使用光弹簧来达到低耗散(高质量)。

Pendulums have long been used as force sensors due to their ultimately low dissipation (high-quality factor) characteristic. They are widely used in the measurement of the gravitational constant, detection of gravitational waves, and determination of ultralight dark matter. Furthermore, it is expected that the quantum nature of gravity will be demonstrated by performing quantum control for macroscopic pendulums. Recently, we have demonstrated that quantum entanglement between two pendulums can be generated using an optical spring [D. Miki, N. Matsumoto, A. Matsumura, T. Shichijo, Y. Sugiyama, K. Yamamoto, and N. Yamamoto, arXiv:2210.13169 (2022)]; however, we have ignored that an optical spring can reduce the quality factor (Q-factor) by applying normal-mode splitting between the pendulum and rotational modes possessing relatively high dissipation. Herein, we analyze a system composed of a cylinder suspended using a beam (a suspended mirror, i.e., a pendulum) and an optical spring to consider normal-mode splitting. The reduction in Q-factor is determined only by the beam parameters: the ratio of the radius of the mirror to the length of the beam, and the ratio of the frequency of the rotational mode to the pendulum mode in the absence of cavity photons. In our analysis, we find that the reduction factor $4.38$ is reproduced, which is consistent with the experimental result in Matsumoto \textit{et al.} [N. Matsumoto, S. B. Catan$\tilde{\text{o}}$-Lopez, M. Sugawara, S. Suzuki, N. Abe, K. Komori, Y. Michimura, Y. Aso, and K. Edamatsu, Phys. Rev. Lett. 122, 071101 (2019)]. Our analysis shows that low dissipation (high quality) can be reached using an optical spring for the realistic pendulum system considering the rotational degree of freedom.

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