Self-error-rejecting photonic qubit transmission in polarization-spatial modes with linear optical elements

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Abstract

We present an original self-error-rejecting photonic qubit transmission scheme for both the polarization and spatial states of photon systems transmitted over collective noise channels. In our scheme, we use simple linear-optical elements, including half-wave plates, 50:50 beam splitters, and polarization beam splitters, to convert spatial-polarization modes into different time bins. By using postselection in different time bins, the success probability of obtaining the uncorrupted states approaches 1/4 for single-photon transmission, which is not influenced by the coefficients of noisy channels. Our self-error-rejecting transmission scheme can be generalized to hyperentangled n-photon systems and is useful in practical high-capacity quantum communications with photon systems in two degrees of freedom.

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Jiang, Y. X., Guo, P. L., Gao, C. Y., Wang, H. B., Alzahrani, F., Hobiny, A., & Deng, F. G. (2017). Self-error-rejecting photonic qubit transmission in polarization-spatial modes with linear optical elements. Science China: Physics, Mechanics and Astronomy, 60(12). https://doi.org/10.1007/s11433-017-9091-0

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