2D Molybdenum Disulfide Embedded Photonic Crystal Fiber for all‐Fiber Phase Retarder
Abstract
Abstract The integration of 2D materials with optical fibers enables multifunctional fiber devices, such as polarizers, modulators, and sensors. Recent advances in direct vapor deposition growth further enhance light‐2D material interactions to centimeter‐scale lengths, overcoming the micrometer‐scale limitations of transferred 2D materials. However, conventional methods for growing 2D materials in fibers typically produce isotropic material architectures due to uniform precursor deposition, limiting applications that require birefringence, such as a phase retarder. Here, a selective vapor deposition method is proposed to realize the non‐circular symmetric growth of 2D molybdenum disulfide (MoS 2 ) into photonic crystal fibers (PCFs), achieving anisotropy‐engineered phase retardation. The high refractive index of MoS 2 efficiently breaks the degeneracy of polarization modes in PCF and enables phase retardation with a manageable beat length of ≈7.7 cm. The MoS 2 ‐PCF phase retarder reliably works in varying conditions, including outdoor exposure, large deformation, and high temperature/humidity. Its phase retardation exhibits an extremely small fluctuation of ≈3.3° between 25 and 200 °C, which is two orders of magnitude lower than that of commercial polarization‐maintaining fibers (≈2.0°/°C). The work provides a new solution for the fiber device preparation and pave the way for robust polarization manipulation in all‐fiber systems.
Article Details
Authors (17)
Ding Zhong
Key Laboratory of Quantum State Construction and Manipulation (Ministry of Education) School of Physics Renmin University of China Beijing 100872 China
Jiajie Gan
Guangdong Basic Research Center of Excellence for Structure and Fundamental Interactions of Matter, Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials, School of Physics
Jiantao Peng
Basic Research Centre of Excellence for Structure and Fundamental Interactions of Matter Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials School of Physics South China Normal University Guangzhou 510006 China
Guodong Xue
Zhiwei Liang
Quanlin Guo
State Key Laboratory for Mesoscopic Physics, Frontiers Science Centre for Nano-optoelectronics, School of Physics, Peking University, Beijing, China.
Yu Fu
Xinyao Shan
Key Laboratory of Quantum State Construction and Manipulation (Ministry of Education) School of Physics Renmin University of China Beijing 100872 China
Han Dong
Russell Center for Advanced Lightwave Science
Xu Cheng
QTF Center of Excellence, Department of Electronics and Nanoengineering
Wentao Yu
Institute of Interdisciplinary Physical Sciences, School of Physics
Yonggang Zuo
Faculty of Metallurgical and Energy Engineering Kunming University of Science and Technology Kunming 650093 China
Xin Jiang
Kaihui Liu
Zhongfan Liu
Center for Nanochemistry, Beijing Science and Engineering Center for Nanocarbons, Beijing National Laboratory for Molecular Sciences, College of Chemistry and Molecular Engineering
Xu Zhou
Can Liu