An Sohee, Jeong Sunghoon, Hwang Jihyun, Jung Yongmin, Kim Jongki, Oh Kyunghwan
Institute of Physics and Applied Physics, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul, 03722, Republic of Korea.
LG Electronics, 222 LG-ro, Jinwi-myeon, Pyeongtaek-si, 17709, Gyeonggi-do, Republic of Korea.
Sci Rep. 2024 Oct 31;14(1):26210. doi: 10.1038/s41598-024-75961-6.
In an experimental exploration, we successfully implemented a self-assembling methodology to construct a periodic liquid-air structure inside a hollow optical fiber (HOF). This fiber comprises a central air hole, a germanosilica ring core, and a silica cladding. A periodic structure of liquid droplets and air was obtained by the application of a microscopic heat source (MHS) traversing along the axial direction of the liquid-filled HOF. In the course of this study, we discerned three distinct zones within the structure. The first zone, referred to as Zone 1, demonstrated near-constant periodicity. The second zone, Zone 2, exhibited adaptable properties with regard to its periodicity, allowing it to be flexibly controlled. In the third zone, Zone 3, we noticed a chaotic response to external parameters, including temperature and the speed at which MHS was traversed. To regulate the liquid-air periodic structures, two different types of MHSs were utilized - a micro hydro-oxygen torch and a metal ring heater, each mounted on a translation stage. The study provides a detailed account of the parameters employed in utilizing these MHSs. Additionally, the optical properties of these liquid-air periodic structures were meticulously analyzed to explore the potential for developing new optofluidic applications.
在一项实验探索中,我们成功实施了一种自组装方法,以在空心光纤(HOF)内部构建周期性液 - 气结构。这种光纤包括一个中心气孔、一个锗硅环芯和一个二氧化硅包层。通过沿充满液体的HOF轴向移动微观热源(MHS),获得了液滴和空气的周期性结构。在这项研究过程中,我们在该结构内识别出三个不同区域。第一个区域称为区域1,表现出近乎恒定的周期性。第二个区域,即区域2,在其周期性方面具有可适应的特性,使其能够灵活控制。在第三个区域,即区域3,我们注意到对包括温度和MHS移动速度在内的外部参数有混沌响应。为了调节液 - 气周期性结构,使用了两种不同类型的MHS——微型氢氧炬和金属环加热器,它们各自安装在一个平移台上。该研究详细说明了使用这些MHS时所采用的参数。此外,还对这些液 - 气周期性结构的光学特性进行了细致分析,以探索开发新型光流体应用的潜力。