Mid-infrared gas cascaded Raman laser with all-fiber structure
A Raman laser and Raman laser technology, applied in the direction of lasers, laser components, phonon exciters, etc., can solve the problems of high pumping threshold and limited effective distance, so as to improve pumping intensity and suppress competition Effect of Raman laser on improving conversion efficiency
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Publication Date
- 2017-11-03
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Abstract
Description
Technical field
[0001] The invention relates to the technical field of laser generating equipment, in particular to an all-fiber structure mid-infrared gas cascade Raman laser. Background technique
[0002] The mid-infrared band is located in the atmospheric window and is widely used in remote sensing detection, lidar, communications, and military fields. At present, the lasers that realize output in the mid-infrared band mainly include quantum cascade lasers, electronic vibration solid-state lasers, optical parametric oscillators, and fiber lasers. Among them, the quantum cascade laser generates more heat during continuous operation, and its excited area is large, which makes it difficult to achieve high-power single-mode output; electronic vibration solid-state lasers can achieve high-efficiency output of 2-5μm, but the thermal lens effect limits it Increased power; the optical parametric oscillator can achieve tunable mid-infrared output with a power level of several watts, b...
Examples
Embodiment Construction
[0024] The present invention will be further described in detail below in conjunction with the drawings and specific embodiments.
[0025] Such as figure 1 As shown, the all-fiber structure mid-infrared gas cascade Raman laser of this embodiment includes a near-infrared tunable fiber laser pump source 1, an anti-resonant hollow-core fiber 2, an input solid-core fiber 3, and an output solid-core fiber 4. The two ends of the input solid-core fiber 3 are respectively fused to the output pigtail of the near-infrared tunable fiber laser pump source 1 and one end of the anti-resonant hollow-core fiber 2, wherein the output pigtail of the near-infrared tunable fiber laser pump source 1 The first fusion splice point 9 is low-loss fusion spliced with the input solid-core fiber 3, one end of the anti-resonance hollow-core fiber 2 is low-loss spliced with the input solid-core fiber 3 through the second fusion splice point 10, and the other end of the anti-resonance hollow-core fiber 2 pa...