Feng Shuai, Tang Tengteng, Park JaeWoo, Kumar Abhishek Saji, Li Xiangjia, Yang Sui
Materials Science and Engineering, School for Engineering of Matter, Transport and Energy, Arizona State University (ASU), Tempe, Arizona 85287, United States.
Aerospace and Mechanical Engineering, School for Engineering of Matter, Transport and Energy, Arizona State University (ASU), Tempe, Arizona 85287, United States.
Nano Lett. 2025 May 28;25(21):8558-8563. doi: 10.1021/acs.nanolett.5c01192. Epub 2025 May 8.
Three-dimensional (3D) printing has emerged as a powerful technology for rapidly prototyping optical materials and components. However, controlling fundamental optical parameters in printed materials remains a significant challenge due to the difficulty of tailoring the internal structures, particularly at the nanoscale. Here we demonstrate the 3D printing-threading of gold nanoplatelets within printing media via digital light processing (DLP). The printed nanoplatelet-resin (PNR) composites exhibit intrinsic optical wavevector () dispersion tailoring before and after nanoplatelet threading states. By exploiting nanoplasmonic chain coupling theory, we observed enhanced in threaded PNR with isofrequency contour tailored from isotropic to elliptical, which further leads to spontaneous emission enhancement of rhodamine dye molecules when coated. The study not only expands the capabilities in accessing the fundamental optical parameters in 3D printed materials but also opens up a new avenue for the development of innovative optical materials with tailored properties.
三维(3D)打印已成为一种用于快速制作光学材料和组件原型的强大技术。然而,由于难以定制内部结构,特别是在纳米尺度上,控制打印材料中的基本光学参数仍然是一项重大挑战。在此,我们通过数字光处理(DLP)展示了在打印介质内对金纳米片进行3D打印穿线。打印的纳米片 - 树脂(PNR)复合材料在纳米片穿线状态前后表现出固有光学波矢()色散定制。通过利用纳米等离子体链耦合理论,我们观察到穿线的PNR中增强,其等频轮廓从各向同性定制为椭圆形,这进一步导致涂覆时罗丹明染料分子的自发发射增强。该研究不仅扩展了获取3D打印材料中基本光学参数的能力,还为开发具有定制特性的创新光学材料开辟了一条新途径。