Department of Chemistry, Lanzhou University, China.
J Am Chem Soc. 2012 May 23;134(20):8439-46. doi: 10.1021/ja209532e. Epub 2012 May 8.
A contemporary question in the intensely active field of periodic mesoporous organosilica (PMO) materials is how large a silsesquioxane precursor can be self-assembled under template direction into the pore walls of an ordered mesostructure. An answer to this question is beginning to emerge with the ability to synthesize dendrimer, buckyball, and polyhedral oligomeric silsesquioxane PMOs. In this paper, we further expand the library of large-scale silsesquioxane precursors by demonstrating that photoluminescent nanocrystalline silicon that has been surface-capped with oligo(triethoxysilylethylene), denoted as ncSi:(CH(2)CH(2)Si(OEt)(3))(n)H, can be self-assembled into a photoluminescent nanocrystalline silicon periodic mesoporous organosilica (ncSi-PMO). A comprehensive multianalytical characterization of the structural and optical properties of ncSi-PMO demonstrates that the material gainfully combines the photoluminescent properties of nanocrystalline silicon with the porous structure of the PMO. This integration of two functional components makes ncSi-PMO a promising multifunctional material for optoelectronic and biomedical applications.
在周期性介孔有机硅(PMO)材料这一非常活跃的领域中,一个当前的问题是,在模板导向下,多大的硅倍半氧烷前体能自组装成有序介孔结构的孔壁。这个问题的答案随着树枝状大分子、富勒烯和多面体低聚倍半硅氧烷 PMO 的合成能力而开始浮现。在本文中,我们通过证明已用寡(三乙氧基硅基乙烯)进行表面封端的发蓝色磷光纳米硅,标记为 ncSi:(CH(2)CH(2)Si(OEt)(3))(n)H,可以自组装成发蓝色磷光纳米硅周期性介孔有机硅(ncSi-PMO),进一步扩展了大规模硅倍半氧烷前体的库。对 ncSi-PMO 的结构和光学性质的综合多分析特性表明,该材料有益地结合了纳米硅的发光性质和 PMO 的多孔结构。这种两种功能组件的集成使 ncSi-PMO 成为光电和生物医学应用中有前途的多功能材料。