Additive Manufacturing of Transparent Multi-Component Nanoporous Glasses.

Additive Manufacturing of Transparent Multi-Component Nanoporous Glasses.
复制标题

DOI:
10.1002/advs.202305775
复制
发表时间:
2023-12
期刊:
影响因子:
15.1
通讯作者:
He, Jin
He, Jin
中科院分区:
材料科学1区
文献类型:
--
作者:
Li, Beining;Li, Zhenjiang;Cooperstein, Ido;Shan, Wenze;Wang, Shuaipeng;Jiang, Benxue;Zhang, Long;Magdassi, Shlomo;He, Jin

文献摘要

参考文献

相似文献

Fabrication of glass with complex geocd the low resolution of particle‐based or fused glass technologies. Herein, a high‐resolution 3D printing of transparent nanoporous glass is presented, by the combination of transparent photo‐curable sol–gel printing compositions and digital light processing (DLP) technology. Multi‐component glass, including binary (Al2O3‐SiO2), ternary (ZnO‐Al2O3‐SiO2, TiO2‐Al2O3‐SiO2), and quaternary oxide (CaO‐P2O5‐Al2O3‐SiO2) nanoporous glass objects with complex shapes, high spatial resolutions, and multi‐oxide chemical compositions are fabricated, by DLP printing and subsequent sintering process. The uniform nanopores of Al2O3‐SiO2‐based nanoporous glasses with the diameter (≈6.04 nm), which is much smaller than the visible light wavelength, result in high transmittance (>95%) at the visible range. The high surface area of printed glass objectives allows post‐functionalization via the adsorption of functional guest molecules. The photoluminescence and hydrophobic modification of 3D printed glass objectives are successfully demonstrated. This work extends the scope of 3D printing to transparent nanoporous glasses with complex geometry and facile functionalization, making them available for a wide range of applications. This work reports metal chelates sol–gel route to 3D print complex‐shaped macroscopic transparent glass structures with inherent porosity and broad compositional design space. This method extends the transparent glass additive manufacturing technology from classical dense glass to the field of nanoporous multi‐component glass, bearing significant promise for their utilization in broad applications, including in light‐emitting devices and sensors.
DOI: 10.3390/photonics8120577
发表时间: 2021-12-01
期刊: PHOTONICS
影响因子: 2.4
作者:
Gonzalez-Hernandez, Diana;Varapnickas, Simonas;Malinauskas, Mangirdas
通讯作者: Malinauskas, Mangirdas
DOI: 10.1016/j.jlumin.2017.07.043
发表时间: 2017-12-01
影响因子: 3.6
作者:
Bai, Zhengyuan;He, Jin;Zhang, Long
通讯作者: Zhang, Long
DOI: 10.1364/ome.9.002307
发表时间: 2019-05-01
影响因子: 2.8
作者:
Baudet, E.;Ledemi, Y.;Messaddeq, Y.
通讯作者: Messaddeq, Y.
DOI: 10.1016/j.addma.2021.102481
发表时间: 2022-01-01
影响因子: 11
作者:
Cheng, Dongxu;Wei, Chao;Li, Lin
通讯作者: Li, Lin
DOI: 10.1016/j.physleta.2012.11.034
发表时间: 2013-01-03
期刊: PHYSICS LETTERS A
影响因子: 2.6
作者:
Fu, Yulan;Hu, Xiaoyong;Gong, Qihuang
通讯作者: Gong, Qihuang