Klichko Yaroslav, Liong Monty, Choi Eunshil, Angelos Sarah, Nel Andre E, Stoddart J Fraser, Tamanoi Fuyuhiko, Zink Jeffrey I
Department of Chemistry and Biochemistry, University of California, Los Angeles, Los Angeles, California 90095.
J Am Ceram Soc. 2009 Jan 1;92(s1):s2-s10. doi: 10.1111/j.1551-2916.2008.02722.x.
Silica thin films and nanoparticles prepared using sol-gel chemistry are derivatized with active molecules to generate new functional materials. The mild conditions associated with sol-gel processing allow for the incorporation of a range of dopants including organic or inorganic dyes, biomolecules, surfactants, and molecular machines. Silica nanoparticles embedded with inorganic nanocrystals, and films containing living cells have also been synthesized. Silica templated with surfactants to create mesostructure contains physically and chemically different regions that can be selectively derivatized using defined techniques to create dynamic materials. Using two different techniques, donor-acceptor pairs can be doped into separated regions simultaneously and photo-induced electron transfer between the molecules can be measured. Mesoporous silica materials are also useful supports for molecular machines. Machines including snap-tops and nanoimpellers that are designed to control the release of guest molecules trapped within the pores are described. Mesoporous silica nanoparticles are promising materials for drug delivery and other biomedical applications because they are nontoxic and can be taken up by living cells. Through appropriate design and synthesis, multifunctional mesoporous silica nanoparticles for sophisticated bio-applications are created.
采用溶胶 - 凝胶化学法制备的二氧化硅薄膜和纳米颗粒用活性分子进行衍生化处理,以生成新型功能材料。溶胶 - 凝胶工艺相关的温和条件允许引入一系列掺杂剂,包括有机或无机染料、生物分子、表面活性剂和分子机器。还合成了嵌入无机纳米晶体的二氧化硅纳米颗粒以及含有活细胞的薄膜。用表面活性剂模板化以形成介观结构的二氧化硅包含物理和化学性质不同的区域,这些区域可以使用特定技术进行选择性衍生化,以创建动态材料。使用两种不同的技术,可以将供体 - 受体对同时掺杂到分离的区域中,并测量分子之间的光致电子转移。介孔二氧化硅材料也是分子机器的有用载体。描述了包括用于控制捕获在孔内的客体分子释放的卡扣式顶部和纳米叶轮在内的机器。介孔二氧化硅纳米颗粒是用于药物递送和其他生物医学应用的有前途的材料,因为它们无毒且可以被活细胞摄取。通过适当的设计和合成,可制备用于复杂生物应用的多功能介孔二氧化硅纳米颗粒。