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Replication of optical microlens arrays using photoresist coated molds

机译:使用光致抗蚀剂涂覆的模具复制光学微透镜阵列

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摘要

A cost reduced method of producing injection molding tools is reported and demonstrated for the fabrication of optical microlens arrays. A standard computer-numerical-control (CNC) milling machine was used to make a rough mold in steel. Surface treatment of the steel mold by spray coating with photoresist is used to smooth the mold surface providing good optical quality. The tool and process are demonstrated for the fabrication of an ø50 mm beam homogenizer for a color mixing LED light engine. The acceptance angle of the microlens array is optimized, in order to maximize the optical efficiency from the light engine. Polymer injection molded microlens arrays were produced from both the rough and coated molds and have been characterized for lenslet parameters, surface quality, light scattering, and acceptance angle. The surface roughness (Ra) is improved approximately by a factor of two after the coating process and the light scattering is reduced so that the molded microlens array can be used for the color mixing application. The measured accepted angle of the microlens array is 40° which is in agreement with simulations.
机译:报告了降低成本的生产注射成型工具的方法,并证明了该方法可用于制造光学微透镜阵列。使用标准的计算机数控(CNC)铣床在钢中制成粗糙的模具。通过喷涂光致抗蚀剂对钢模进行表面处理,可以使模具表面光滑,从而提供良好的光学质量。演示了用于制造用于混色LED光引擎的ø50mm光束均化器的工具和过程。优化微透镜阵列的接收角,以使来自光引擎的光学效率最大化。聚合物注射成型的微透镜阵列是由粗糙和涂覆的模具制成的,并已针对小透镜参数,表面质量,光散射和接受角进行了表征。在涂覆过程之后,表面粗糙度(Ra)大约提高了两倍,并且减少了光散射,因此成型的微透镜阵列可用于混色应用。测得的微透镜阵列的可接受角度为40°,与仿真一致。

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