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Scalable Wafer-Level Fabrication of Slanted TiO2 Gratings for Directional Visible Light Control
Xiang Gao1, Shuo Dong2, Xiaolong Wang3
1Tianjin Key Lab for Rare Earth Materials and Applications, Center for Rare Earth and Inorganic Functional Materials, School of Materials Science and Engineering, Nankai University, Tianjin 300350, China.
Abstract:
Slanted TiO2 gratings serve as key couplers enabling high-efficiency, large-angle diffraction in augmented reality (AR) diffractive optical waveguide systems, thereby supporting compact and transparent display integration. However, fabrication challenges and high production costs have hindered their scalability. Here, we demonstrate a streamlined and high-fidelity pattern transfer framework, integrating interference lithography, nanoimprint lithography, inductively coupled plasma etching, and reactive ion beam etching. This framework enables one-step pattern replication and precise angular control across wafer-scale areas. An experimental demonstration of the slanted TiO2 grating confirms high structural fidelity and effective phase modulation, enabling efficient directional light steering toward desired diffraction orders. Our work offers a practical and scalable fabrication strategy for implementing slanted TiO2 gratings in AR systems, advancing their feasibility for large-scale integration and commercial deployment.

