材料科学
掺杂剂
平版印刷术
纳米复合材料
造型(装饰)
兴奋剂
多孔玻璃
烧结
多孔性
3D打印
发光
折射率
复合材料
纳米技术
光电子学
光学
物理
作者
Richard Prediger,Sebastian Kluck,Leonhard Hambitzer,Bastian E. Rapp,Silvio Tisato,Josephine N. Häberlein,Dorothea Helmer,Frederik Kotz
标识
DOI:10.1002/adma.202511245
摘要
Glasses are utilized for their outstanding optical, mechanical, and thermal properties. However, conventional production methods mostly yield in glasses with uniform compositions and material properties. Here a novel lithographic approach is presented for high-resolution 3D dopant integration at defined positions, which enables property modifications in specific regions. For this, a porous glass matrix derived from nanocomposites is shaped using 3D printing or injection molding. Using volumetric 3D printing like computed axial or two-photon lithography, doping is performed within the porous glass using photocurable metal oxide precursors. The dopant is then permanently integrated within the glass during a final sintering step. The local integration of dopants like Ti4+, Co2+, Eu3+ or Tb3+ allow to selectively change the color, luminescence or refractive index within a 3D-shaped glass with micron resolution. The process enables a wide range of novel applications from integrated optics and photonics to mass customization, anti-counterfeiting, and information storage.
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