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Photonic bandgap fiber bundle spectrometer

机译:光子带隙光纤束光谱仪

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By using a photonic bandgap (PBG) fiber bundle and a monochrome CCD camera, we experimentally demonstrate an all-fiber spectrometer. A total of 100 Bragg fibers that have complementary and overlapping bandgaps are chosen to compose the fiber bundle. A monochrome CCD is then used to capture the binned image. To reconstruct the test spectrum from a single CCD image, we develop an algorithm based on pseudoinversion of the spectrometer transmission matrix. We demonstrate that the peak center wavelength can always be reconstructed within several percent of its true value regardless of the peak width or position, and that, although the widths of the individual Bragg fiber bandgaps are quite large (60-180 nm), the spectroscopic system has a resolution limit of approx30 nm. Moreover, we conclude that, by minimizing system errors, the resolution can be further improved down to several nanometers in width. Finally, we report fabrication of PBG fiber bundles containing hundreds of fibers using a two-stage drawing technique. This method constitutes a very promising approach toward industrial-strength fabrication of all-fiber spectrometers.
机译:通过使用光子带隙(PBG)光纤束和单色CCD相机,我们实验证明了全光纤光谱仪。总共选择100条具有互补和重叠带隙的布拉格纤维来构成纤维束。然后使用单色CCD捕获合并的图像。为了从单个CCD图像重建测试光谱,我们开发了基于光谱仪传输矩阵伪反演的算法。我们证明,无论峰宽或峰高如何,峰中心波长始终可以在其真实值的百分之几内重建,并且尽管各个布拉格光纤带隙的宽度相当大(60-180 nm),但光谱系统的分辨率极限约为30 nm。此外,我们得出的结论是,通过最小化系统误差,分辨率可以进一步降低到几纳米的宽度。最后,我们报告使用两阶段拉伸技术制造包含数百根纤维的PBG纤维束。该方法构成了工业强度的全光纤光谱仪制造的非常有前途的方法。

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