强激光与粒子束, 2017, 29 (2): 021001, 网络出版: 2017-02-10  

梯形透过率光栅远场光强分布及光栅方程的解析推导

Analytical derivation of far-field intensity distribution and grating equation for trapezoidal transmission grating
作者单位
中国工程物理研究院 激光聚变研究中心, 等离子体物理重点实验室, 四川 绵阳 621900
摘要
二值化梯形透过率光栅是一种具有离轴衍射级次的二维光栅,其各衍射点光强信息和位置信息的确定对该新型光栅的实际应用具有重要意义。然而,目前尚无相关解析理论对其进行合理的描述。为了解决上述问题,通过二维傅里叶变换方法获得了该光栅各个衍射级次光强分布的解析表达式,并根据二维光栅的结构特征给出了在透射式和反射式情况下该光栅满足的光栅方程。这为该新型光栅的光线追迹计算打下了理论基础。最后,将解析表达式计算结果与采用X-Lab软件标量衍射模块计算的数值模拟结果进行比较,验证解析理论的正确性。
Abstract
Previously, we proposed a binary trapezoidal transmission grating with the properties of quasi single-order diffraction. Numerical simulations based on the scalar diffraction theory and a visible experiment have been carried out to verify the diffraction properties in far-field. However, this work didn’t give the analytic expression of the far-field intensity distribution and grating equation of the novel two-dimensional grating. Therefore, it is impossible to estimate the intensity distribution and position on the screen of every diffraction order quickly when the grating is applied to the actual spectral measurement, and at present these could only be obtained by the numerical simulation based on the theory of scalar diffraction slowly. To solve the above problem and use this novel grating in ray-tracing calculations, the analytic theory must be improved to describe the intensity distribution and grating equation of every diffraction order. In this paper, we give the analytical expression of the intensity distribution and the grating equation satisfies both transmission type and reflection type cases by using the method of analytical derivation. Finally, comparisons are made between the results of calculation by our analytical expression and simulation by the scalar diffraction module of the X-Lab to prove the validity of the analytical theory.
参考文献

[1] 李跃林, 白文安, 陈时胜, 等. 针孔透射光栅谱仪衍射效率的理论模拟[J]. 光学学报, 1989, 9(6): 550-555. (Li Yuelin, Bai Wenan, Chen Shisheng, et al. Theoretical simulations of diffraction efficiencies of a pinhole transmission grating spectrometer. Acta Optica Sinica, 1989, 9(11): 550-555)

[2] 王晓方, Pachtman A, 徐至展,等. 软X射线透射光栅谱仪用于激光等离子体辐射特性研究[J]. 中国激光, 1991, 18(3): 186-191.(Wang Xiaofang, Pachtman A, Xu Zhizhan, et al. Laser plasma X-ray emission studies using an imaging transmission grating spectrometer. Chinese Journal of Lasers, 1991, 18(3): 186-191)

[3] Born M, Wolf E. Principle of optics[M]. London: Cambridge University Press, 1980.

[4] 吕乃光.傅里叶光学[M].2版.北京: 机械工业出版社, 2006. (Lü Naiguang. Fourier optics. 2nd ed. Beijing: China Machine Press, 2006)

[5] Attwood D. Soft X-ray and extreme ultraviolet radiation, principles and applications[M]. London: Cambridge University Press, 1999.

[6] Cao L F, Forster E, Fuhrmann A, et al. Single order X-ray diffraction with binary sinusoidal transmission grating[J]. Applied Physics Letters, 2007, 90: 053501.

[7] 王传珂, 况龙钰, 王哲斌, 等. 光学波段量子点阵衍射光栅的衍射特性[J]. 强激光与粒子束, 2008, 20(4): 607-611. (Wang Chuanke, Kuang Longyu, Wang Zhebin, et al. Diffraction properties of quantum-dot-array diffraction grating for visible light. High Power Laser and Particle Beams, 2008, 20(4): 607-611)

[8] Zang H P, Wang C K, Gao Y L, et al. Elimination of higher-order diffraction using zigzag transmission grating in soft X-ray region[J]. Applied Physics Letters, 2012, 100: 111904.

[9] Kuang L Y, Cao L F, Zhu X L, et al. Quasi-sinusoidal single-order diffraction transmission grating used in X-ray spectroscopy[J]. Opt Lett, 2011, 36: 3954-3956.

[10] 魏来,曹磊峰,范伟,等. 软X光谱学光子筛衍射特性的实验表征[J]. 强激光与粒子束, 2011, 23(2): 387-391. (Wei Lai, Cao Leifeng, Fan Wei, et al. Measurement of diffraction properties of photon sieves applied to spectroscopy for soft X-ray. High Power Laser and Particle Beams, 2011, 23(2): 387-391)

[11] 高宇林,曹磊峰,周维民,等. 基于光子筛的X射线光谱仪[J]. 强激光与粒子束, 2011, 23(6): 1523-1526. (Gao Yulin, Cao Leifeng, Zhou Weimin, et al. A soft X-ray spectrograph based on photon sieves. High Power Laser and Particle Beams, 2011, 23(6): 1523-1526)

[12] Gao N, Xie C Q. High-order diffraction suppression using modulated groove position gratings[J]. Opt Lett, 2011, 36(21): 4251-4253.

[13] Fan Q P, Liu Y W, Wang C K, et al. Single-order diffraction grating designed by trapezoidal transmission function[J].Opt Lett, 2015, 40(11): 2657-2660.

[14] Poletto L, Frassetto F. Single-grating monochromators for extreme-ultraviolet ultrashort pulses[J].Appl Sci, 2013, 3: 1-13.

[15] Mcentaffer R, Deroo C, Schultz T, et al. First results from a next-generation off-plane X-ray diffraction grating[J]. Exp Astron, 2013, 36(1): 389-405.

范全平, 杨祖华, 魏来, 彭倩, 王心怡, 张强强, 陈勇, 巫殷忠, 晏卓阳, 钱凤, 曹磊峰. 梯形透过率光栅远场光强分布及光栅方程的解析推导[J]. 强激光与粒子束, 2017, 29(2): 021001. Fan Quanping, Yang Zuhua, Wei Lai, Peng Qian, Wang Xinyi, Zhang Qiangqiang, Chen Yong, Wu Yinzhong, Yan Zhuoyang, Qian Feng, Cao Leifeng. Analytical derivation of far-field intensity distribution and grating equation for trapezoidal transmission grating[J]. High Power Laser and Particle Beams, 2017, 29(2): 021001.

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