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Numerical Band Calculation of Holographically Formed Periodic Structures with Irregular Motif

机译:不规则基序全息形成的周期结构的数值能带计算

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Recently, two-dimensional and three-dimensional periodic dielectric structures have been directly fabricated by laser holographic lithography (HL) to create novel geometric structures with high-precision tolerances. Multiple beam interference via beam splitting mirrors or diffractive optical elements produce isointensity contours that can be accurately recorded in photoresist and subsequently used as a template for creating photonic crystals with a complete or partial bandgap. The periodic structures typically formed by HL comprise of highly convoluted contours that do not conform to typically known geometrical shapes and therefore preclude the use of analytic approaches such as the plane wave expansion (PWE) method to accurately generate the band-dispersion curves. In this paper, we present a numerical technique that decomposes the HL-formed structure into fine mesh grids and expands this material mesh into the PWE method to generate band-dispersion curves. Band diagrams obtained in this way are shown to accurately match the well known solutions for opal, inverted opal, and woodpile structures which have a regular motif. We extend the numerical technique to predict the band structure of HL templates which have an irregular motif and present band diagrams for structures formed by Ar-ion laser phasemask interference.
机译:最近,已经通过激光全息光刻(HL)直接制造了二维和三维周期性电介质结构,以创建具有高精度公差的新颖几何结构。通过分束镜或衍射光学元件产生的多光束干涉会产生等强度轮廓,该等强度轮廓可以准确记录在光致抗蚀剂中,随后用作制作具有完整或部分带隙的光子晶体的模板。通常由HL形成的周期性结构包含高度不规则的轮廓,这些轮廓不符合通常已知的几何形状,因此无法使用诸如平面波扩展(PWE)方法之类的分析方法来准确生成能谱。在本文中,我们提出了一种数值技术,该技术将HL形成的结构分解为精细的网格,并将这种材料网格扩展为PWE方法以生成能谱。示出以这种方式获得的能带图与具有规则图案的蛋白石,倒蛋白石和木桩结构的已知解决方案精确匹配。我们扩展了数值技术,以预测具有不规则图案的HL模板的能带结构,并给出了由Ar离子激光相位掩模干涉形成的结构的能带图。

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