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Photon catalysis and quantum state engineering

机译:光子催化和量子州工程

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Photon catalysis is a technique by which a readily available Gaussian state of light prepared in one mode is incident upon a beam splitter with a discrete number of photons, q, prepared in another mode; the resulting two-mode state is then subjected to single-photon resolving detection for q photons on one of the output modes. By employing beam splitters of different transmissivities and reflectivities, the subsequent single-mode state is shown to possess nonclassical properties such as quadrature squeezing and sub-Poissonian statistics. We consider the case in which the input state is the most general of pure single-mode Gaussian states: a squeezed coherent state. Noting the Gaussianity of the initial state, we demonstrate non-Gaussianity of the photon-catalyzed state by analyzing the quadrature uncertainty product and explicitly illustrate it through the Wigner quasi-probability distribution. We extend this technique to the two-mode squeezed states, whereby we perform photon catalysis on one mode of a two-mode squeezed vacuum state. The resulting correlated two-mode state may have applications in fundamental tests of quantum mechanics, such as violations of Bell's inequalities, as the detection loophole can be closed due to the non-Gaussianity of the photon-catalyzed state. We also generalize our method to include state projective measurements for l not equal q photons. (C) 2018 Optical Society of America.
机译:光子催化是一种技术,通过该技术,在一种模式中,在一种模式中制备的易于获得的高斯光的光在分束器上入射,在具有离散数量的光子,Q,在另一种模式下制备;然后将得到的两模式状态对一个输出模式上的Q光子进行单光子解析检测。通过采用不同透射率和反射率的分束器,显示后续单模状态具有非生物特性,例如正交挤压和亚泊尼时统计。我们考虑输入状态是纯单模高斯态中最通用的情况:挤压的相干状态。注意到初始状态的高斯度,我们通过分析正交不确定性产品并通过Wigner准概率分布明确地示出了光子催化状态的非高斯性。我们将该技术扩展到双模挤压状态,由此我们在双模挤压真空状态的一种模式下执行光子催化。所得到的相关的双模式状态可以具有在量子力学的基本测试中的应用,例如违规的贝尔不等式,因为可以由于光子催化状态的非高斯度而关闭检测漏洞。我们还概括了我们的方法,包括L不是等于Q光子的状态投影测量。 (c)2018年光学学会。

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