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用于微光电子应用的介观结构染料掺杂二氧化钛

Mesostructured dye-doped titanium dioxide for micro-optoelectronic applications.

作者信息

Vogel Robert, Meredith Paul, Kartini Indriana, Harvey Michael, Riches Jamie D, Bishop Alexis, Heckenberg Norman, Trau Matt, Rubinsztein-Dunlop Halina

机构信息

Department of Chemistry & Centre for Nanotechnology and Biomaterials, University of Queensland, Brisbane, QLD 4072, Australia.

出版信息

Chemphyschem. 2003 Jun 16;4(6):595-603. doi: 10.1002/cphc.200200494.

Abstract

Optically transparent, mesostructured titanium dioxide thin films were fabricated using an amphiphilic poly(alkylene oxide) block copolymer template in combination with retarded hydrolysis of a titanium isopropoxide precursor. Prior to calcination, the films displayed a stable hexagonal mesophase and high refractive indices (1.5 to 1.6) relative to mesostructured silica (1.43). After calcination, the hexagonal mesophase was retained with surface areas > 300 m2 g-1. The dye Rhodamine 6G (commonly used as a laser dye) was incorporated into the copolymer micelle during the templating process. In this way, novel dye-doped mesostructured titanium dioxide films were synthesised. The copolymer not only directs the film structure, but also provides a solubilizing environment suitable for sustaining a high monomer-to-aggregate ratio at elevated dye concentrations. The dye-doped films displayed optical thresholdlike behaviour characteristic of amplified spontaneous emission. Soft lithography was successfully applied to micropattern the dye-doped films. These results pave the way for the fabrication and demonstration of novel microlaser structures and other active optical structures. This new, high-refractive index, mesostructured, dye-doped material could also find applications in areas such as optical coatings, displays and integrated photonic devices.

摘要

采用两亲性聚环氧烷嵌段共聚物模板并结合异丙醇钛前驱体的延迟水解,制备了光学透明的介孔二氧化钛薄膜。在煅烧之前,薄膜呈现出稳定的六方介相,相对于介孔二氧化硅(1.43)具有较高的折射率(1.5至1.6)。煅烧后,六方介相得以保留,表面积大于300 m2 g-1。在模板化过程中,将染料罗丹明6G(常用作激光染料)掺入共聚物胶束中。通过这种方式,合成了新型的染料掺杂介孔二氧化钛薄膜。共聚物不仅引导薄膜结构,还提供了一个增溶环境,适合在较高染料浓度下维持高单体与聚集体比例。染料掺杂薄膜表现出放大自发发射的光学阈值样行为。软光刻技术成功地应用于对染料掺杂薄膜进行微图案化。这些结果为新型微激光结构和其他有源光学结构的制造和演示铺平了道路。这种新型的高折射率、介孔结构、染料掺杂材料还可在光学涂层、显示器和集成光子器件等领域找到应用。

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