Sun Dechuan, Tanyi Gregory, Lee Alan, French Chris, Liang Younger, Lim Christina, R Unnithan Ranjith
Department of Electrical and Electronic Engineering, The University of Melbourne, Melbourne, VIC, Australia.
Neural Dynamics Laboratory, Department of Medicine, The University of Melbourne, Melbourne, VIC, Australia.
Commun Eng. 2025 Jul 22;4(1):131. doi: 10.1038/s44172-025-00469-4.
The design and production of augmented reality (AR) waveguide combiners face considerable challenges due to the intricate nature of conventional fabrication techniques and the need for high precision. To overcome these obstacles, the field requires rapid prototyping methods that enable researchers and engineers to swiftly explore various designs and configurations, thereby accelerating the development process. Here, we have developed a cost-effective method for fabricating liquid geometric waveguide combiners for AR applications using silicone oil as the medium, leveraging the capabilities of Polyjet 3D printing. During the design phase, we optimized the structure of the waveguide combiner to facilitate easier fabrication. Our proposed method simplifies the production process by removing the need for complicated steps like dicing, layer bonding, and polishing, which are usually involved in traditional manufacturing techniques. We conducted optical simulations and developed a prototype using our patented fabrication method, successfully demonstrating its feasibility for rapid prototyping.
由于传统制造技术的复杂性和高精度要求,增强现实(AR)波导合束器的设计和生产面临着巨大挑战。为克服这些障碍,该领域需要快速成型方法,使研究人员和工程师能够迅速探索各种设计和配置,从而加速开发进程。在此,我们利用Polyjet 3D打印技术,开发了一种以硅油为介质制造用于AR应用的液体几何波导合束器的经济高效方法。在设计阶段,我们优化了波导合束器的结构以便于制造。我们提出的方法通过省去传统制造技术中通常涉及的切割、层粘结和抛光等复杂步骤,简化了生产过程。我们进行了光学模拟,并使用我们的专利制造方法开发了一个原型,成功证明了其用于快速成型的可行性。