论文标题

引力光学机械:通过重力交换的光子纠缠

Gravitational Optomechanics: Photon-Matter Entanglement via Graviton Exchange

论文作者

Biswas, Dripto, Bose, Sougato, Mazumdar, Anupam, Toroš, Marko

论文摘要

太阳引力场中的光偏转是对一般相对论的最根本后果之一,也是一个世纪前Eddington首次进行的经典测试之一。然而,尽管在现代物理学中具有中心作用,但没有实验在表面上都表现出非古典特征的表面上测试了它。本文表明,只要重力和物质与量子力学同时处理,引起光弯曲的相互作用也会引起光子纠缠。扰动量子重力框架内的量子光弯曲相互作用突出了这一点,这表明纠缠状态可以与光的相干状态和利用由Graviton Exchange引起的非线性耦合的物质生成。此外,量子光弯曲的相互作用能够在Spin-2和Spin-0重力群之间辨别,从而为在短距离和量子水平下的重力理论提供了测试。我们将通过估计使用线性熵产生的纠缠的数量级来结束。特别是,我们发现半径为$ 0.25 $ m的半环腔,可用于$ 150 $ Hz的$ 10 $ kg机械振荡器,可用于使用光波长的Petawatt Laser Laser source生成订单统一的线性熵。尽管提出的方案超出了当前的实验现实,但它仍引发了有关在量子水平上测试重力相互作用的自旋的讨论。

The deflection of light in the gravitational field of the Sun is one of the most fundamental consequences for general relativity as well as one of its classical tests first performed by Eddington a century ago. However, despite its center stage role in modern physics, no experiment has tested it in an ostensibly quantum regime where both matter and light exhibit non-classical features. This paper shows that the interaction which gives rise to the light-bending also induces photon-matter entanglement as long as gravity and matter are treated at par with quantum mechanics. The quantum light-bending interaction within the framework of perturbative quantum gravity highlights this point by showing that the entangled states can be generated already with coherent states of light and matter exploiting the non-linear coupling induced by graviton exchange. Furthermore, the quantum light-bending interaction is capable of discerning between the spin-2 and spin-0 gravitons thus also providing a test for alternative theories of gravity at short distances and at the quantum level. We will conclude by estimating the order of magnitude of the entanglement generated by employing the linear entropy. In particular, we find that a half-ring cavity of radius $0.25$ m placed around a $10$ kg mechanical oscillator operating at $150$ Hz, could be used to generate linear entropy of order unity using a petawatt laser source at optical wavelengths. While the proposed scheme is beyond the current experimental realities it nonetheless initiates the discussion about testing the spin of the gravitational interaction at the quantum level.

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