Wang Jian, Ma Chao, Duan Shaochen, Wang Donghui, Yuan Libo
School of Optoelectronic Engineering, Guilin University of Electronic Technology, Guilin 541004, China.
Key Laboratory of In-Fiber Integrated Optics, Ministry of Education of China, Harbin Engineering University, Harbin 150001, China.
Micromachines (Basel). 2023 May 26;14(6):1120. doi: 10.3390/mi14061120.
This article developed a micromachining system of arcing helical fiber with four electrodes to address the issues with conventional approaches to processing helical fibers, which have several uses. The technique may be utilized to create several types of helical fibers. First, the simulation demonstrates that the four-electrode arc's constant-temperature heating area is larger than the two-electrode arc's size. A large constant-temperature heating area is not only beneficial to the stress release of fiber, but also reduces the influence of fiber vibration and reduces the difficulty of device debugging. Then, a variety of helical fibers with various pitches were processed using the system presented in this research. By using a microscope, it can be observed that the cladding and core edges of the helical fiber are constantly smooth and the central core is tiny and off-axis, both of which are favorable for the propagation of optical waveguides. A low off-axis has been shown to minimize optical loss through modeling of energy coupling in spiral multi-core optical fibers. The transmission spectrum findings indicated that the device's insertion loss and transmission spectrum fluctuation were both minimal for four different types of multi-core spiral long-period fiber gratings with intermediate cores. These prove that the spiral fibers prepared by this system have excellent quality.
本文开发了一种带有四个电极的电弧螺旋光纤微加工系统,以解决传统螺旋光纤加工方法存在的问题,传统方法有多种用途。该技术可用于制造多种类型的螺旋光纤。首先,模拟表明四电极电弧的恒温加热面积大于两电极电弧的面积。大的恒温加热面积不仅有利于光纤应力释放,还能降低光纤振动的影响,降低设备调试难度。然后,使用本研究提出的系统加工了各种不同螺距的螺旋光纤。通过显微镜可以观察到,螺旋光纤的包层和纤芯边缘始终光滑,中心纤芯微小且偏心,这两者都有利于光波导的传播。通过对螺旋多芯光纤中的能量耦合进行建模表明,低偏心可使光损耗最小化。传输光谱结果表明,对于四种不同类型的带有中间纤芯的多芯螺旋长周期光纤光栅,该器件的插入损耗和传输光谱波动均最小。这些证明了该系统制备的螺旋光纤具有优异的质量。