Zhong Huajian, Liu Xueya, Fu Cailing, Xu Baijie, He Jun, Li Pengfei, Meng Yanjie, Du Chao, Chen Lin, Tang Jian, Wang Yiping
Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
Shenzhen Key Laboratory of Photonic Devices and Sensing Systems for Internet of Things, Guangdong and Hong Kong Joint Research Centre for Optical Fibre Sensors, Shenzhen University, Shenzhen 518060, China.
Nanomaterials (Basel). 2022 May 2;12(9):1540. doi: 10.3390/nano12091540.
Two types of series-integrated fiber Bragg gratings (SI-FBGs), i.e., strong and weak SI-FBGs, were inscribed in a standard single-mode fiber (SMF) using the femtosecond laser point-by-point technology. In the SI-FBGs inscribing system, the grating pitch of each FBG and the distance between the two adjacent FBGs in the SI-FBGs can be flexibly controlled by adjusting the inscription parameters. The strong SI-FBGs with different grating pitches and the weak SI-FBGs with an identical grating pitch were employed to successfully measure the temperature distribution in a tube furnace and the strain distribution on a cantilever beam, respectively. A high spatial resolution of less than 1 mm was achieved during the distributed temperature sensing experiment. Moreover, the spatial resolution could be improved by decreasing the distance between the two adjacent FBGs, i.e., decreasing the FBG length and the space between the two adjacent FBGs. Hence, the inscribed high-quality SI-FBGs have great potential to be developed as various quasi-distributed sensors with a high spatial resolution.
利用飞秒激光逐点技术在标准单模光纤(SMF)中写入了两种串联集成光纤布拉格光栅(SI-FBG),即强SI-FBG和弱SI-FBG。在SI-FBG写入系统中,通过调整写入参数,可以灵活控制每个FBG的光栅间距以及SI-FBG中两个相邻FBG之间的距离。分别采用具有不同光栅间距的强SI-FBG和具有相同光栅间距的弱SI-FBG成功测量了管式炉中的温度分布和悬臂梁上的应变分布。在分布式温度传感实验中实现了小于1mm的高空间分辨率。此外,通过减小两个相邻FBG之间的距离,即减小FBG长度和两个相邻FBG之间的间距,可以提高空间分辨率。因此,所写入的高质量SI-FBG具有很大的潜力被开发为各种具有高空间分辨率的准分布式传感器。