Wan Zhenyu, Liang Yize, Zhang Xi, Tang Ziyi, Fang Liang, Ma Zelin, Ramachandran Siddharth, Wang Jian
Wuhan National Laboratory for Optoelectronics and School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan, 430074 Hubei, China.
Optics Valley Laboratory, Wuhan, 430074 Hubei, China.
Research (Wash D C). 2022 Sep 2;2022:9839502. doi: 10.34133/2022/9839502. eCollection 2022.
Rotational Doppler effect has made tremendous development in both theoretical and applied research over the last decade. Different from the inertial thinking of focusing on the scalar field dominated by helical phase light, we have revealed a vectorial Doppler effect in our previous work, which is based on the spatially variant polarized light fields to simultaneously acquire the speed and direction of a target. Here, further, we propose a method to construct a flexible and robust velocimeter based on that novel effect by employing an air-core fiber with kilometer-length scale for remotely measuring the vectorial information of angular velocity in situ. In addition, we experimentally substantiate that the measurement system still has commendable accuracy in determining the direction of movement even when the air-core fiber is interfered by the external environment. The demonstrations prove the potential of vectorial Doppler effect in practical scenarios and remote measurements.
在过去十年中,旋转多普勒效应在理论和应用研究方面都取得了巨大进展。与专注于螺旋相位光主导的标量场的惯性思维不同,我们在先前的工作中揭示了一种矢量多普勒效应,该效应基于空间变化的偏振光场来同时获取目标的速度和方向。在此,我们进一步提出一种方法,通过采用千米级尺度的空芯光纤,基于这种新效应构建一种灵活且稳健的测速仪,用于原位远程测量角速度的矢量信息。此外,我们通过实验证实,即使空芯光纤受到外部环境干扰,测量系统在确定运动方向时仍具有可观的精度。这些演示证明了矢量多普勒效应在实际场景和远程测量中的潜力。