Luo Wanli, Jiang Peng, Xu Qiang, Cao Lei, Jones Adam, Li Kang, Copner Nigel, Gong Yongkang
College of Physics and Optoelectronic Technology, Baoji University of Arts and Sciences, Baoji 721016, China.
Engineering Technology Research Center for Ultrafast Optics and Advanced Material of Baoji, Baoji 721016, China.
Materials (Basel). 2021 Aug 29;14(17):4921. doi: 10.3390/ma14174921.
A novel cyclic olefin copolymer (COC)-based polymer optical fiber (POF) with a rectangular porous core is designed for terahertz (THz) sensing by the finite element method. The numerical simulations showed an ultrahigh relative sensitivity of 89.73% of the x-polarization mode at a frequency of 1.2 THz and under optimum design conditions. In addition to this, they showed an ultralow confinement loss of 2.18 × 10 cm, a high birefringence of 1.91 × 10, a numerical aperture of 0.33, and an effective mode area of 1.65 × 10 μm was obtained for optimum design conditions. Moreover, the range dispersion variation was within 0.7 ± 0.41 ps/THz/cm, with the frequency range of 1.0-1.4 THz. Compared with the traditional sensor, the late-model sensor will have application value in THz sensing and communication.
通过有限元方法设计了一种具有矩形多孔纤芯的新型基于环烯烃共聚物(COC)的聚合物光纤(POF)用于太赫兹(THz)传感。数值模拟表明,在1.2太赫兹频率和最佳设计条件下,x偏振模式的超高相对灵敏度为89.73%。除此之外,在最佳设计条件下,它们还显示出2.18×10厘米的超低限制损耗、1.91×10的高双折射、0.33的数值孔径以及1.65×10微米的有效模式面积。此外,在1.0 - 1.4太赫兹的频率范围内,范围色散变化在0.7±0.41皮秒/太赫兹/厘米以内。与传统传感器相比,这种新型传感器在太赫兹传感和通信方面将具有应用价值。