• Chinese Optics Letters
  • Vol. 17, Issue 9, 090602 (2019)
Youpeng Xie, Ting Lei, Chuanwu Yang, Luping Du, and Xiaocong Yuan*
Author Affiliations
  • Nanophotonics Research Centre, Shenzhen Key Laboratory of Micro-Scale Optical Information Technology, Shenzhen University, Shenzhen 518060, China
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    DOI: 10.3788/COL201917.090602 Cite this Article Set citation alerts
    Youpeng Xie, Ting Lei, Chuanwu Yang, Luping Du, Xiaocong Yuan. Beam wander relieved optical switch using Bessel beams in turbulent atmosphere[J]. Chinese Optics Letters, 2019, 17(9): 090602 Copy Citation Text show less

    Abstract

    The digital micro-mirror device (DMD)-based optical switch has the advantages of high-speed channels reallocation, miniaturization, stability, and large capacity for short reach optical communication in the datacenter. However, thermal turbulent atmosphere in the datacenter would cause perturbations and channel crosstalk for the optical switch. The self-healing optical beams such as the Bessel beams have the non-diffraction property to mitigate the turbulence issue. Here, we propose and demonstrate a Bessel beams enabled DMD-based optical switch to improve the stability and performance of optical communication in turbulent atmosphere. We statistically characterize the beam wanders of the Gaussian and Bessel beams in turbulent atmosphere at temperatures of 60°C and 80°C. We build the two-channel optical switch communication system and measure the bit error rate of the 15 Gbit/s on–off keying signals transmitted by the Gaussian and Bessel beams at temperatures of 60°C and 80°C, respectively. The optical switch using the Bessel beams shows lower bit error rates with weaker fluctuations compared with the Gaussian beams. The DMD-based optical switch using the Bessel beams has the potential for practical optical communication applications in the datacenter.
    E(r,φ,z)=A0exp(ikzz)Jn(krr)exp(±inφ),(1)

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    Youpeng Xie, Ting Lei, Chuanwu Yang, Luping Du, Xiaocong Yuan. Beam wander relieved optical switch using Bessel beams in turbulent atmosphere[J]. Chinese Optics Letters, 2019, 17(9): 090602
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