Zhai Tianrui, Ma Xiaojie, Han Liang, Zhang Shuai, Ge Kun, Xu Yanan, Xu Zhiyang, Cui Libin
Faculty of Science, College of Physics and Optoelectronics, Beijing University of Technology, Beijing 100124, China.
Nanomaterials (Basel). 2021 Sep 13;11(9):2381. doi: 10.3390/nano11092381.
This article assembles a distributed feedback (DFB) cavity on the sidewalls of the optical fiber by using very simple fabrication techniques including two-beam interference lithography and dip-coating. The DFB laser structure comprises graduated gratings on the optical fiber sidewalls which are covered with a layer of colloidal quantum dots. Directional DFB lasing is observed from the fiber facet due to the coupling effect between the grating and the optical fiber. The directional lasing from the optical fiber facet exhibits a small solid divergence angle as compared to the conventional laser. It can be attributed to the two-dimensional light confinement in the fiber waveguide. An analytical approach based on the Bragg condition and the coupled-wave theory was developed to explain the characteristics of the laser device. The intensity of the output coupled laser is tuned by the coupling coefficient, which is determined by the angle between the grating vector and the fiber axis. These results afford opportunities to integrate different DFB lasers on the same optical fiber sidewall, achieving multi-wavelength self-aligned DFB lasers for a directional emission. The proposed technique may provide an alternative to integrating DFB lasers for applications in networking, optical sensing, and power delivery.
本文通过使用包括双光束干涉光刻和浸涂在内的非常简单的制造技术,在光纤侧壁上组装了一个分布反馈(DFB)腔。DFB激光结构包括光纤侧壁上的渐变光栅,这些光栅覆盖有一层胶体量子点。由于光栅与光纤之间的耦合效应,从光纤端面观察到了定向DFB激光。与传统激光器相比,光纤端面的定向激光具有小的立体发散角。这可归因于光纤波导中的二维光限制。开发了一种基于布拉格条件和耦合波理论的分析方法来解释激光器件的特性。输出耦合激光的强度由耦合系数调节,耦合系数由光栅矢量与光纤轴之间的角度决定。这些结果为在同一光纤侧壁上集成不同的DFB激光器提供了机会,从而实现用于定向发射的多波长自对准DFB激光器。所提出的技术可为在网络、光学传感和功率传输应用中集成DFB激光器提供一种替代方案。