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用于小型傅里叶变换光谱仪的层状光栅优化

Lamellar grating optimization for miniaturized fourier transform spectrometers.

作者信息

Ferhanoglu Onur, Seren Hüseyin R, Lüttjohann Stephan, Urey Hakan

机构信息

Department of Electrical Engineering, Koç University, Sariyer, Istanbul 34450, Turkey.

出版信息

Opt Express. 2009 Nov 9;17(23):21289-301. doi: 10.1364/OE.17.021289.

Abstract

Microfabricated Lamellar grating interferometers (LGI) require fewer components compared to Michelson interferotemeters and offer compact and broadband Fourier transform spectrometers (FTS) with good spectral resolution, high speed and high efficiency. This study presents the fundamental equations that govern the performance and limitations of LGI based FTS systems. Simulations and experiments were conducted to demonstrate and explain the periodic nature of the interferogram envelope due to Talbot image formation. Simulations reveal that the grating period should be chosen large enough to avoid Talbot phase reversal at the expense of mixing of the diffraction orders at the detector. Optimal LGI grating period selection depends on a number of system parameters and requires compromises in spectral resolution and signal-to-bias ratio (SBR) of the interferogram within the spectral range of interest. New analytical equations are derived for spectral resolution and SBR of LGI based FTS systems.

摘要

与迈克尔逊干涉仪相比,微纳制造的层状光栅干涉仪(LGI)所需的组件更少,并且能提供具有良好光谱分辨率、高速和高效的紧凑型宽带傅里叶变换光谱仪(FTS)。本研究提出了支配基于LGI的FTS系统性能和局限性的基本方程。进行了模拟和实验,以演示和解释由于塔尔博特图像形成而导致的干涉图包络的周期性。模拟结果表明,光栅周期应选择得足够大,以避免塔尔博特相位反转,但这是以牺牲探测器处衍射级的混合为代价的。最佳LGI光栅周期的选择取决于许多系统参数,并且需要在感兴趣的光谱范围内的干涉图的光谱分辨率和信号偏置比(SBR)之间进行折衷。推导了基于LGI的FTS系统的光谱分辨率和SBR的新解析方程。

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