Li Ziliang, Liu Shen, Bai Zhiyong, Fu Cailing, Zhang Yan, Sun Zhongyuan, Liu Xueya, Wang Yiping
Opt Express. 2018 Sep 3;26(18):24114-24123. doi: 10.1364/OE.26.024114.
We demonstrate a high-efficiency grating fabrication system, which can be used to inscribe a high-quality helical long period fiber grating (HLPFG) on single-mode fiber by means of hydrogen-oxygen flame. Such the HLPFG can be produced in enormous quantities with a uniform grating parameters and good reproducibility of grating inscription. Possible mechanisms for refractive index modulation in the HLPFG can be attributed to residual stress concentration by solidifying the periodic twisting stress under a fused status of optical fiber. Moreover, the HLPFG exhibits an excellence performance of high temperature sensing with a high sensitivity of ~132.8 pm/°C and a measuring range from room temperature to 900 °C. Comparing to the traditional LPFG fabricated by CO laser or arc discharge technique, the HLPFG has a low the bending and tensile strain sensitivity of 1.94 nm/(1/m) and 1.41 pm/με, respectively. So the proposed HLPFG could have a great potential in special applications as optical high-temperature sensors.
我们展示了一种高效的光栅制造系统,该系统可用于通过氢氧火焰在单模光纤上刻写高质量的螺旋长周期光纤光栅(HLPFG)。这种HLPFG能够大量生产,具有均匀的光栅参数和良好的光栅刻写再现性。HLPFG中折射率调制的可能机制可归因于在光纤熔融状态下固化周期性扭曲应力而产生的残余应力集中。此外,HLPFG表现出卓越的高温传感性能,具有约132.8 pm/°C的高灵敏度和从室温到900°C的测量范围。与通过CO激光或电弧放电技术制造的传统LPFG相比,HLPFG的弯曲和拉伸应变灵敏度分别较低,为1.94 nm/(1/m)和1.41 pm/με。因此,所提出的HLPFG作为光学高温传感器在特殊应用中可能具有巨大潜力。