WAVELENGTH OF THE He-Ne LASER BY USING TWO TYPES OF DIAPHRAGM DIFFRACTON METHODS

Sri Purwaningsih, Hebat Shidow Falah, Neneng Lestari, Hardiantinus Sitinjak, Almahdi Mousa
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Abstract

Light diffraction, characterized by the spreading or bending of waves when encountering narrow obstacles, forms the focal point of this research endeavor. Utilizing the circular diffraction method, this study pioneers the identification of the He-Ne laser wavelength through experimentation with both three and five-slit diaphragms. The investigation with a three-slit diaphragm involves three variations in slit distances: d = 0.125 mm, 0.25 mm, and 0.5 mm at a screen distance of 150 nm, revealing diffraction patterns across three orders of magnitude. For the five-slit diaphragm, the analysis extends to a slit distance of d = 0.25 nm and a layer distance of 320 nm. Interestingly, the results reveal that the wavelength spectrum of the He-Ne laser depends on the variation of the gap distance. Remarkably, a gap distance as minimal as 0.25 nm yields wavelengths within the range of 641 nm to 660.67 nm, highlighting the diffraction process's sensitivity to minute variations in experimental parameters. This groundbreaking research not only elucidates the intricate interplay between light diffraction and experimental configurations but also underscores the circular diffraction method's versatility in determining the fundamental properties of laser light. This study paves the way for advancements in optical instrumentation and characterization techniques by offering novel insights into wavelength determination methodologies. These findings have far-reaching implications across diverse scientific disciplines, including physics, materials science, and optical engineering, enhancing the precision and capability of optical measurement technologies.
使用两种反射镜去耦方法的氦氖激光波长
光衍射的特点是光波在遇到狭窄障碍物时会发生扩散或弯曲,这正是本研究工作的重点。本研究利用圆形衍射法,通过使用三缝和五缝光阑进行实验,率先确定了 He-Ne 激光波长。使用三狭缝光阑进行的研究涉及狭缝距离的三种变化:d = 0.125 毫米、0.25 毫米和 0.5 毫米,屏幕距离为 150 纳米,揭示了三个数量级的衍射图样。对于五狭缝光阑,分析扩展到狭缝距离 d = 0.25 nm 和层间距 320 nm。有趣的是,结果显示氦氖激光的波长谱取决于缝隙距离的变化。值得注意的是,最小间隙距离为 0.25 nm,也能产生 641 nm 至 660.67 nm 范围内的波长,凸显了衍射过程对实验参数微小变化的敏感性。这项开创性的研究不仅阐明了光衍射与实验配置之间错综复杂的相互作用,还凸显了圆形衍射法在确定激光基本特性方面的多功能性。这项研究为波长测定方法提供了新的见解,为光学仪器和表征技术的进步铺平了道路。这些发现对物理学、材料科学和光学工程等不同科学学科具有深远影响,提高了光学测量技术的精度和能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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