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Optical fiber interferometric spectrometer

机译:光纤干涉光谱仪

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摘要

We design an optical fiber spectrometer based on optical fiber Mach-Zehnder interferometer. In optical fiber Fourier transform spectrometer spectra information is obtained by Fourier transform of interferogram, which recording intensity change vs. optical path difference. Optical path difference is generated by stretching one fiber arm which wound around fiber stretch drive by high power supply. Information from detector is linear with time rather than with optical path difference. In order to obtain high accuracy wavenumber, reference beam is used to control the optical path difference. Optical path difference is measured by reference laser interference fringe. Interferogram vs. optical path difference is resampled by Brault algorithm with information from reference beam and test beam. In the same condition, one-sided interferogram has higher resolution than that of two-sided interferogram. For one-sided interferogram, zero path difference position must be determined as accurately as possible, small shift will result in phase error. For practical experiment in laboratory, position shift is inevitable, so phase error correction must be considered. Zero order fringe is determined by curve fitting. Spectrum of light source is obtained from one-sided interferogram by Fourier cosine transform. A spectral resolution of about ~3.1cm~(-1) is achieved. In practice, higher resolution is needed. This compact equipment will be used in emission spectra and absorption spectra, especially in infrared region.
机译:我们设计基于光纤Mach-Zehnder干涉仪的光纤光谱仪。在光纤傅里叶变换谱仪信息中,通过傅立叶变换的干扰图获得,记录强度变化与光路差。通过拉伸一个纤维臂通过高电源缠绕纤维拉伸驱动的光纤臂产生光程差。来自探测器的信息是线性的,而不是光路径。为了获得高精度波数,参考光束用于控制光路径。通过参考激光干涉条纹测量光路径。干扰图与光路径由Brault算法重新采样,来自参考光束和测试光束的信息。在相同的条件下,单面干涉图具有比双面干扰图更高的分辨率。对于单侧干涉图,必须尽可能准确地确定零路径差异位置,小移位将导致相位误差。对于实验室的实际实验,位置换档是不可避免的,所以必须考虑相位误差校正。零级边缘由曲线配件确定。通过傅里叶余弦变换从单侧干涉图获得光源的光谱。实现了约〜3.1cm〜(-1)的光谱分辨率。在实践中,需要更高的分辨率。该紧凑型设备将用于发射光谱和吸收光谱,特别是在红外区域。

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