论文标题
在色差条件下测量极化量子状态
Measurement of polarization quantum states under chromatic aberration conditions
论文作者
论文摘要
波板是用于转换和测量光线极化状态的基本装置。众所周知,通过两个波板的光的变化使得可以在任意基础上测量极化状态。然而,光的有限光谱宽度导致了由板材材料的寄生寄生分散体引起的极化量子转化的色差。这会导致量子极化状态的层析成像中的系统误差,并显着降低其准确性。这项研究是我们工作1的发展,其中首先制定了用于色差下极化量的量子测量的适当模型。这项工作包括对较早在两分国家的情况下获得的结果的概括。除了随机状态的例子外,考虑了在HAAR量度上均匀分布的那些。使用完整信息的矩阵,它是定量追踪的,在有限光谱宽度的条件下,色差的存在如何导致量子测量中的信息丢失。结果表明,开发的模糊测量模型而不是标准投影测量模型,即使使用高阶波板,也可以抑制量子层析成像的系统误差。事实证明,与标准测量模型相比,模糊测量模型可以显着提高重建精度。
The wave plate is a basic device for transforming and measuring the polarization states of light. It is known that the transformation of light by means of two wave plates makes it possible to measure the state of polarization in an arbitrary basis. The finite spectral width of the light, however, leads to a chromatic aberration of the polarization quantum transformation caused by the parasitic dispersion of the birefringence of the plate material. This causes systematic errors in the tomography of quantum polarization states and significantly reduces its accuracy. This study is a development of our work1, in which an adequate model for quantum measurements of polarization qubits under chromatic aberration was first formulated. This work includes a generalization of the results obtained earlier for the cases of two-qubit states. Along with examples of random states those uniformly distributed over the Haar measure are considered. Using a matrix of complete information, it is quantitatively traced how the presence of chromatic aberrations under conditions of a finite spectral width of light leads to the loss of information in quantum measurements. It is shown that the use of the developed model of fuzzy measurements instead of the model of standard projection measurements makes it possible to suppress systematic errors of quantum tomography even when using high-order wave plates. It turns out that the fuzzy measurement model can give a significant increase in the reconstruction accuracy compared to the standard measurement model.