基于乙炔填充空心芯光纤的中红外全光调制器

Kaiyuan Zheng, Shoulin Jiang, Feifan Chen, Yan Zhao, Shou-fei Gao, Ying‐ying Wang, H. Ho, W. Jin
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引用次数: 3

摘要

本文报道了基于乙炔填充抗谐振空心芯光纤光热效应的全光中红外相位和强度调制器。控制光束的光吸收将气体分子提升到更高的能级,通过非辐射弛豫诱导局部加热,并调节气体材料的折射率,从而调节信号光束通过空心芯光纤传播的积累相位。通过调制控制波束的强度,相应地调制信号波束的相位。利用1.53 μm近红外控制光束,在3.35 μm信号波长处实现了2.2π rad的全光相位调制。将相位调制器置于Mach-Zehnder干涉仪的一个臂上,实现了开关比为25 dB的强度调制。充气空心芯光纤调制器可以在近红外到中红外的超宽波长范围内工作,在中红外光子系统中具有广阔的应用前景。
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Mid-infrared all-optical modulators based on an acetylene-filled hollow-core fiber
We report all-optical mid-infrared phase and intensity modulators based on the photo-thermal effect in an acetylene-filled anti-resonant hollow-core fiber. Optical absorption of the control beam promotes the gas molecules to a higher energy level, which induces localized heating through non-radiative relaxation and modulates the refractive index of the gas material and hence the accumulated phase of the signal beam propagating through the hollow-core fiber. By modulating the intensity of the control beam, the phase of the signal beam is modulated accordingly. By use of a 1.53 μm near-infrared control beam, all-optical phase modulation up to 2.2π rad is experimentally demonstrated at the signal wavelength of 3.35 μm. With the phase modulator placed in one arm of a Mach-Zehnder interferometer, intensity modulation with on-off ratio of 25 dB is achieved. The gas-filled hollow-core-fiber modulators could operate over an ultra-broad wavelength band from nearto midinfrared and have promising application in mid-infrared photonic systems.
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