Camarota Beatrice, Mann Stephen, Onida Barbara, Garrone Edoardo
Dipartimento di Scienza dei Materiali e Ingegneria Chimica, Politecnico di Torino, Corso Duca degli Abruzzi, 24, 10129 Torino, Italy.
Chemphyschem. 2007 Nov 12;8(16):2363-6. doi: 10.1002/cphc.200700322.
Herein we report on the mechanism of formation of a hybrid phenylene-bridged hexagonally ordered mesoporous organosilica with crystal-like walls (CW-Ph-HMM). Electron microscopy and X-Ray diffraction studies indicate that the formation of CW-Ph-HMM involves the surfactant-mediated hydrothermal transformation of an amorphous organosilica precursor and that the final product is hierarchically ordered. Significantly, the material is in the form of submicrometre-thick sheets that consist of co-aligned aggregates of needle-like particles (up to 500 nm in length and 50 nm in width). The results suggest that preferential growth along the channel direction of the hexagonally ordered mesostructure is coupled with the propagation of molecular periodicity in the pore walls. Together, these factors give rise to the growth of highly anisotropic primary nanofilaments that become co-aligned to produce micrometer-thick sheets consisting of a periodic array of mesoscopic channels oriented perpendicular to the surface of the flake-like particles.
在此,我们报道了一种具有晶体状壁的杂化亚苯基桥连六方有序介孔有机硅(CW-Ph-HMM)的形成机制。电子显微镜和X射线衍射研究表明,CW-Ph-HMM的形成涉及表面活性剂介导的无定形有机硅前驱体的水热转变,且最终产物具有分级有序结构。值得注意的是,该材料呈亚微米厚的片状,由针状颗粒(长度可达500 nm,宽度为50 nm)的共排列聚集体组成。结果表明,沿六方有序介观结构通道方向的优先生长与孔壁中分子周期性的传播相关联。这些因素共同导致了高度各向异性的初级纳米丝的生长,这些纳米丝共排列形成微米厚的片,该片由垂直于片状颗粒表面取向的介观通道的周期性阵列组成。