Stoykova Elena, Nenchev Marin
Central Laboratory of Optical Storage and Processing of Information, Bulgarian Academy of Sciences, Acad. G. Bonchev Str., Bl. 101, 1113 Sofia, Bulgaria.
J Opt Soc Am A Opt Image Sci Vis. 2010 Jan;27(1):58-68. doi: 10.1364/JOSAA.27.000058.
We describe a plane-wave-expansion approach for calculation of the fringe pattern in transmission and reflection for a Gaussian monochromatic beam. Both positive and negative incidence, at which the incident light beam undergoes multiple reflections within the wedge in direction of increasing or decreasing wedge thickness respectively, are analyzed. It is shown that the two opposite incidences of the light beam are described by the same mathematical expressions; i.e., the transmitted/reflected fringe pattern at positive incidence is a continuation of the pattern at negative incidence at some distance from the wedge. Numerical simulations are made for a high-reflectivity-coating air-gap Fizeau interferential wedge with apex angle of 5-100 microrad and thickness of 5-500 microm as a useful optical element in laser resonator design. Experimental verification is also provided.
我们描述了一种用于计算高斯单色光束透射和反射条纹图案的平面波展开方法。分析了正入射和负入射情况,在这两种情况下,入射光束分别在楔形区域内沿楔形厚度增加或减少的方向经历多次反射。结果表明,光束的两种相反入射情况由相同的数学表达式描述;即,正入射时的透射/反射条纹图案是负入射时在距楔形一定距离处图案的延续。对顶角为5 - 100微弧度、厚度为5 - 500微米的高反射率涂层气隙菲佐干涉楔形进行了数值模拟,该楔形是激光谐振器设计中的一种有用光学元件。还提供了实验验证。