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Carbide-bonded graphene-based Joule heating for embossing fine microstructures on optical glass

机译:基于碳化物的石墨烯焦耳加热技术,用于在光学玻璃上压纹微结构

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This paper reports the fabrication of high-quality microstructures on optical glass via hot embossing using carbide-bonded graphene (CBG) based Joule heating for the first time. In this study, a tailor-made micro hot embossing tool equipped with a modified CBG-based Joule heating system was designed and developed for transferring microstructures (e.g., microlens arrays, MLAs for short) from the CBG-coated silicon mold insert into the optical glass (P-SK57). Initially, the surface topographies of a typical 3x3 MLA from a bare silicon mold to an embossed glass replica were compared for evaluating form errors brought in during different preparation stages. The feasibility of the CBG-based Joule heating technique for the non-equilibrium thermal imprinting of optical glass was evaluated by the surface integrity and replication fidelity of the embossed MLA features. Thermally induced residual stress and imaging performance of the embossed glass lens were assessed as well. Experimental results indicate that the proposed CBG-assisted hot embossing technique, in combination with single point diamond turning technology, has the capability of producing high-quality glass MLAs. Moreover, this technique allows notably fine replication of surface shapes at the microscale, as well as roughness information at the nanoscale. Consequently, the embossed MLA replica shows satisfactory imaging performance.
机译:本文首次报道了使用基于碳化物结合的石墨烯(CBG)的焦耳热通过热压印在光学玻璃上制造高质量微结构的方法。在这项研究中,设计并开发了量身定制的微型热压花工具,该工具配备了基于CBG的改进的焦耳加热系统,用于将微结构(例如微透镜阵列,简称MLA)从CBG涂层的硅模具插入物转移到光学元件中。玻璃(P-SK57)。最初,比较了从裸硅模具到压纹玻璃复制品的典型3x3 MLA的表面形貌,以评估在不同制备阶段引入的形状误差。通过浮雕的MLA特征的表面完整性和复制保真度,评估了基于CBG的焦耳加热技术在光学玻璃非平衡热压印中的可行性。还评估了压纹玻璃透镜的热诱导残余应力和成像性能。实验结果表明,提出的CBG辅助热压花技术与单点金刚石车削技术相结合,具有生产高质量玻璃MLA的能力。此外,该技术允许在微米级显着精细复制表面形状,并在纳米级显出粗糙度信息。因此,压花的MLA复制品显示出令人满意的成像性能。

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