Wahab M Abdul, He Chaobin
Department of Materials Synthesis and Integration, Institute of Materials Research and Engineering (IMRE), The Agency for Science, Technology, and Research (A*STAR), 3 Research Link, Singapore 117602, Republic of Singapore.
Langmuir. 2009 Jan 20;25(2):832-8. doi: 10.1021/la803192z.
Self-assembly, optical, and mechanical properties of surfactant-directed biphenyl-bridged periodic mesoporous organosilica thin films (PMOF-Bp's) with molecular-scale periodicity in the pore walls were successfully demonstrated for the first time. The biphenyl-bridged organosilica precursor, 4,4-bis(triethoxysilyl)biphenyl (Bp-TES) has been used as the sole precursor (100%) for preparing PMOF-Bp films with molecular-scale periodicity in the pore walls via the surfactant-mediated one-step mild acidic self-assembly process. High-resolution X-ray diffraction (HRXRD) patterns and transmission electron microscope (TEM) images of PMOF-Bp materials confirmed the formation of a biphenyl-bridged periodic mesophase with molecular-scale periodicity in the organosilica framework. Fourier transform infrared (FT-IR) and NMR spectroscopic data also strongly suggested that the biphenyl organic segment is covalently bonded with silicon atoms in the acidic ethanol-washed biphenyl-bridged mesoporous framework. The emission behavior is sensitive to synthesis and thermal treatment temperatures. The biphenyl-bridged PMO films show absorption and emission due to the presence of biphenyl segment in pore walls. Nanoindentation hardness of the PMOF-Bp films could be controlled by temperature, degree of pore ordering and molecular periodicity, and even thickness of films. For example, well-organized PMOF-Bp film with molecular-scale periodicity in the pore walls showed a higher hardness value (0.23 GPa) than that of less mesoordered PMOF-Bp film (0.13 GPa). For all solvent-extracted PMO samples, N(2) gas sorption experiments showed the surface area (from 714 to 688 m(2)/g), the pore volume (from 0.76 to 0.68 cm(3)/g), and pore size (2.81 to 3.1 nm). The solid-state NMR and FT-IR spectroscopic data were used to propose plausible interpretations of the formation of hydrogen-bonded molecular periodicity in the pore walls. The experimental periodicity value 1.40 nm was strongly supported by the periodicity obtained by the structural model (1.389 nm).
首次成功展示了具有分子尺度周期性孔壁的表面活性剂导向联苯桥联周期性介孔有机硅薄膜(PMOF-Bp)的自组装、光学和机械性能。联苯桥联有机硅前驱体4,4-双(三乙氧基硅基)联苯(Bp-TES)已被用作唯一前驱体(100%),通过表面活性剂介导的一步温和酸性自组装过程制备孔壁具有分子尺度周期性的PMOF-Bp薄膜。PMOF-Bp材料的高分辨率X射线衍射(HRXRD)图谱和透射电子显微镜(TEM)图像证实了在有机硅骨架中形成了具有分子尺度周期性的联苯桥联周期性中间相。傅里叶变换红外(FT-IR)和核磁共振(NMR)光谱数据也强烈表明,在酸性乙醇洗涤的联苯桥联介孔骨架中,联苯有机片段与硅原子共价键合。发射行为对合成和热处理温度敏感。由于孔壁中存在联苯片段,联苯桥联的PMO薄膜表现出吸收和发射。PMOF-Bp薄膜的纳米压痕硬度可以通过温度、孔有序度和分子周期性甚至薄膜厚度来控制。例如,孔壁具有分子尺度周期性的组织良好的PMOF-Bp薄膜显示出比介孔有序度较低的PMOF-Bp薄膜(0.13 GPa)更高的硬度值(0.23 GPa)。对于所有溶剂萃取的PMO样品,N₂气体吸附实验显示了表面积(从714到688 m²/g)、孔体积(从0.76到0.68 cm³/g)和孔径(2.81到3.1 nm)。固态NMR和FT-IR光谱数据被用于对孔壁中氢键分子周期性的形成提出合理的解释。实验周期性值1.40 nm得到了结构模型获得的周期性(1.389 nm)的有力支持。