Qian Guo-dong, Chen Miao, Zhang Peng-yue, Wang Zhi-yu, Wang Min-quan
Department of Materials Science & Engineering, State Key Lab of Silica Materials, Zhejiang University, Hangzhou 310027, China.
Guang Pu Xue Yu Guang Pu Fen Xi. 2005 Feb;25(2):181-3.
Doping 2,2'-bipyridine molecules in silica gel glass leads to special spectroscopic properties compared to those dissolved in liquid solutions. For the sample without heat treatment, two broad bands centered at 400 nm and 454 nm respectively, induced by the radiative transition from the first excited level S1 to the ground level S0 and attributed to the emission from an excited dimeric 2,2'-bipyridine species respectively, were observed. After heat-treated at 200 degrees C, the excimer emission at 454 nm disappeared, and the sample exhibited another emission band centered at 325 nm due to the radiative transition from the second excited level S2 to the ground level. S2-->S0 transition resulted from restricting 2,2'-bipyridine molecules in silica networks. Only the structure emission of S2-->S0 transition was observed when heat-treated at 550 degrees C, which indicates that most of 2,2'-bipyridine molecules were entrapped in the cages of Si-O network. The above results can be used to characterize the microstructural evolution of hybrid organic-inorganic optical materials.
与溶解在液体溶液中的情况相比,在硅胶玻璃中掺杂2,2'-联吡啶分子会导致特殊的光谱性质。对于未经热处理的样品,观察到分别以400 nm和454 nm为中心的两个宽带,它们分别由从第一激发态S1到基态S0的辐射跃迁引起,且分别归因于激发的二聚体2,2'-联吡啶物种的发射。在200℃热处理后,454 nm处的准分子发射消失,并且样品由于从第二激发态S2到基态的辐射跃迁而呈现出另一个以325 nm为中心的发射带。S2→S0跃迁是由于2,2'-联吡啶分子在二氧化硅网络中受到限制而产生的。在550℃热处理时仅观察到S2→S0跃迁的结构发射,这表明大多数2,2'-联吡啶分子被困在Si-O网络的笼中。上述结果可用于表征有机-无机杂化光学材料的微观结构演变。