微塑料
聚苯乙烯
极化(电化学)
材料科学
光学
光电子学
计算机科学
物理
聚合物
地质学
复合材料
海洋学
化学
物理化学
作者
Xianghui Kong,Xiangwei Zeng
标识
DOI:10.1117/1.oe.64.8.084104
摘要
Polystyrene microplastics are now widely distributed in aquatic environments, encompassing natural waters, bottled water, and even biological fluids such as blood and urine. We investigate the polarization transmission characteristics of polystyrene suspensions. Monodisperse polystyrene microspheres with diameters of 0.2, 0.5, and 1 μm were used to create uniform scattering environments in water. Incident wavelengths of 470, 532, and 670 nm were selected, respectively. The study examines which type of polarized light maintains its polarization most effectively. For polystyrene suspensions containing 0.2 μm particles, parallel polarized light demonstrated superior polarization retention at the 532 and 670 nm wavelengths. In all other instances, right-handed circular polarized light exhibited better polarization retention. This phenomenon can be tentatively explained by the vector Fokker–Planck approximation. According to the vector Fokker–Planck approximation, the retention of circular polarization is correlated with the asymmetry parameter g. Circular polarization preserves its helicity and handedness during propagation through anisotropic random media. By contrast, linear polarization states become randomized more rapidly. This reversal occurs as the anisotropy of the environment decreases. The investigation also addresses which wavelength demonstrates enhanced polarization retention. Longer wavelengths exhibit improved polarization retention. Both parallel and right-handed circular polarized light achieve optimal polarization retention at the 670 nm wavelength. The outcomes of this research are anticipated to aid in endeavors such as underwater communication, underwater detection, and blood flow imaging techniques.
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