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利用超快激光驱动的微爆炸在固体聚合物材料中制备基于三维孔洞的金刚石晶格光子晶体。

Use of ultrafast-laser-driven microexplosional for fabricating three-dimensional void-based diamond-lattice photonic crystals in a solid polymer material.

作者信息

Zhou Guangyong, Ventura Michael James, Vanner Michael Ross, Gu Min

机构信息

Centre for Micro-Photonics and Centre for Ultra-high Bandwidth Devices for Optical Systems, School of Biophysical Sciences and Electrical Engineering, Swinburne University of Technology, Hawthorn, Victoria, Australia.

出版信息

Opt Lett. 2004 Oct 1;29(19):2240-2. doi: 10.1364/ol.29.002240.

Abstract

Micro-sized void spheres are successfully generated in a solid polymer by use of a tightly focused femtosecond laser beam from a high-repetition-rate laser oscillator. Confocal reflection images show that the void spheres are longitudinal rotational symmetric ellipsoids with a ratio of long to short axes of approximately 1.5. Layers of void spheres are then stacked to create three-dimensional diamond-lattice photonic crystals. Three gaps are observed in the [100] direction with a suppression rate of the second gap of up to approximately 75% for a 32-layer structure. The observed first- and second-order gaps shift to longer and shorter wavelengths, respectively, as the angle of incidence increases.

摘要

利用来自高重复频率激光振荡器的紧聚焦飞秒激光束,成功地在固体聚合物中产生了微米级的空心球体。共焦反射图像显示,空心球体是长轴与短轴之比约为1.5的纵向旋转对称椭球体。然后将空心球体层堆叠起来,以制造三维金刚石晶格光子晶体。在[100]方向上观察到三个禁带,对于32层结构,第二禁带的抑制率高达约75%。随着入射角的增加,观察到的第一和第二阶禁带分别向更长和更短的波长移动。

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