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Direct Imprint of Optical Functionalities on Free-Form Chalcogenide Glasses

机译:在自由形式硫族化物玻璃上直接印记光学功能

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摘要

Scalable surface patterning of chalcogenide glasses is the crux for many optical applications of these promising optical materials. Here, a novel, resist-free surface patterning of chalcogenide glasses with 3D relief microstructures is introduced, using direct radiation-assisted thermal imprint. The imprint is based on a nanocomposite mold made of a carbon nanotube matrix and polydimethylsiloxane resin. To allow nanoimprint, the mold and glass substrate are confined between two elastic membranes, pneumatically pressed against each other, and controllably radiated by an infrared bulb. Since chalcogenide glass is transparent to infrared radiation, the radiation is mostly absorbed in the mold due to the embedded carbon nanotubes, so that the glass-mold interface is heated to the imprint temperature. By using this approach, the first of its type direct imprint of chalcogenide glass of any arbitrary form is demonstrated, including flat substrates and convex aspheric lenses. The composition and structure of imprinted chalcogenide glass are analyzed, and it is demonstrated that they are well maintained throughout the imprint. It is optically characterized both in transmission and reflection modes. It is believed that the innovation provides a quantum leap in the micro- and nano-scale processing of chalcogenide glasses, and opens the pathway to their numerous applications.
机译:硫族化物玻璃的可缩放表面图案是这些有前途的光学材料在许多光学应用中的关键。在这里,使用直接辐射辅助的热压印技术,介绍了具有3D浮雕微结构的硫属化物玻璃的新颖,无抗蚀剂的表面构图。压印基于由碳纳米管基质和聚二甲基硅氧烷树脂制成的纳米复合材料模具。为了实现纳米压印,将模具和玻璃基板限制在两个弹性膜之间,彼此气动压紧,并通过红外灯泡可控地辐射。由于硫属化物玻璃对于红外辐射是透明的,因此由于嵌入的碳纳米管,辐射大部分被模具吸收,因此玻璃模具界面被加热到压印温度。通过使用这种方法,展示了任何形式的硫属化物玻璃的第一个直接印记,包括平面基板和凸非球面透镜。分析了压印硫属化物玻璃的组成和结构,并证明在整个压印过程中它们得到了很好的维护。在透射和反射模式下都具有光学特征。可以相信,这项创新为硫族化物玻璃的微米和纳米级加工带来了巨大的飞跃,并为它们的众多应用打开了道路。

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