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Organosilica mesoporous

Organosilica Mesoporous Materials with Double Functionality Amino Groups and p-Cyclodextrin Synthesis and Properties... [Pg.213]

Organosilica Mesoporous Materials with Double Functionality... [Pg.215]

SYNTHESIS AND PROTOLYTIC PROPERTIES OF THE PERIODICALLY ORDERED MESOPOROUS ORGANOSILICAS WITH MCM-41-TYPE ARCHITECTURES FUNCTIONALISED... [Pg.41]

Sulfonic Acid Functionalization of Ordered Mesoporous Materials and Periodic Organosilicas... [Pg.123]

I2 as a probe for aromatic rings in phenylene-bridged periodic mesoporous organosilica... [Pg.233]

Phenylene-bridged periodic mesoporous organosilicas, with both amorphous and crystal-like walls, (referred to in the following as AW-Ph-HMM and CW-Ph-HMM, respectively) were synthesized and characterized as previously reported [6,7]. BTEB was used as a precursor for both solids the surfactant was Brij-76 (Ci8H37(OCH2CH2)nOH) in acidic media for AW-Ph-HMM and octadecyl-trimethylammonium bromide(ODTMA) in basic media for CW-Ph-HMM. A purely siliceous MCM-41 sample was also synthesised, the first step being the solution of octadecyltrimethylammonium bromide in a basic aqueous solution (NH3), kept a 333 K. Tetraethyl orthosilicate (TEOS) was then added in all cases dropwise, and the mixture stirred for 24h at room temperature (H20 34.2 g/ NH3 (15%) 8.52 g/ ODTMA 0.73 g TEOS 3.24 g). After further 24 hours in hydrothermal conditions at 368 K, the sample... [Pg.233]

Hoffmann, F. Cornelius, M. Morell, J. Froba, M. 2006. Periodic mesoporous organosilicas (PMOs) Past, present, and future. J. Nanosc. Nanotech. 6 265-288. [Pg.307]

W. J. Hunks and G. A. Ozin, Challenges and advances in the chemistry of periodic mesoporous organosilicas (PMOs), J. Mater. Chem., 2005, 15, 3716. [Pg.203]

B. D. Hatton, K. Landskron, W. Whitnall, D. D. Perovic and G. A. Ozin, Spin Coated Periodic Mesoporous Organosilica Thin Films Towards a New Generation of Low-Dielectric-Constant Materials, Adv. Fund. Mater., 2005, 15, 823. [Pg.203]

In this research study an ordered, mesoporous hybrid organosilica material incorporating a biphei rl moiety was fabricated. The polymerization process was surfactant-mediated to ensure uniform pore pattern and narrow pore size distribution. The synthesis of the organosilica precursor was done and investigated by the research group of the Inorganic Synthesis and Computational Research Laboratory of Institute of Chemistry, Diliman, Quezon City. [Pg.398]

Figure 15.1 Ordered nanoscale structures of mesoporous materials such as FSM-16 and HMM-1 (Et-HMM-1) as the silica and organosilica templates for surface-mediated synthesis of metal/alloy nanowires and nanoparticles. Figure 15.1 Ordered nanoscale structures of mesoporous materials such as FSM-16 and HMM-1 (Et-HMM-1) as the silica and organosilica templates for surface-mediated synthesis of metal/alloy nanowires and nanoparticles.
This chapter deals with the selective preparation, TEM/EXAFS/XPS characterization and catalysis of mono- and bimetallic nanowires and nanoparticles highly ordered in silica FSM-16, organosilica HMM-1 and mesoporous silica thin films. The mechanism of nanowire formation is discussed with the specific surface-mediated reactions of metal precursors in the restraint of nanoscale void space of mesoporous silica templates. The unique catalytic performances of nanowires and particles occluded in mesoporous cavities are also reviewed in terms of their shape and size dependency in catalysis as well as their unique electronic and magnetic properties for the device application. [Pg.600]

Figure 15.18 Proposed structures of (a) Pt nanorod wires in silica FSM-16 and (b) Pt nanonecklace wires in organosilica such as HMM-1 (Et-HMM) and HMM-p (Ph-HMM), which are used as the mesoporous templates for nanowire formation. Figure 15.18 Proposed structures of (a) Pt nanorod wires in silica FSM-16 and (b) Pt nanonecklace wires in organosilica such as HMM-1 (Et-HMM) and HMM-p (Ph-HMM), which are used as the mesoporous templates for nanowire formation.
Figure 3.7 Schematic of the incorporation of organic groups in the pore walls of mesoporous silica using bridged organosilane precursors (top). Schematic of the structure of a phenylene-bridged hybrid mesoporous organosilica with both atomic and mesoporous periodicity (bottom) [36],... Figure 3.7 Schematic of the incorporation of organic groups in the pore walls of mesoporous silica using bridged organosilane precursors (top). Schematic of the structure of a phenylene-bridged hybrid mesoporous organosilica with both atomic and mesoporous periodicity (bottom) [36],...
MULTI-SILYLATED COMPOUNDS FOR THE SYNTHESIS OF (PERIODIC) MESOPOROUS ORGANOSILICAS (PMOs) 72... [Pg.39]


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See also in sourсe #XX -- [ Pg.41 , Pg.61 , Pg.66 , Pg.94 ]




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1,4-phenylene-bridged mesoporous organosilica

Application of Periodic Mesoporous Organosilica

Hybrid mesoporous organosilica material

Hybrid periodic mesoporous organosilica

Mesoporous organosilica nanoparticles

Mesoporous organosilicas

Mesoporous organosilicas

Ordered periodic mesoporous organosilicas (PMOs

Organosilica

Organosilica mesoporous materials

Organosilica mesoporous materials synthesis

Organosilica mesoporous materials with double functionality

Organosilicas

Periodic Mesoporous Organosilicas with Amorphous Wall Structure

Periodic Mesoporous Organosilicas with Crystal-Like Wall Structure

Periodic mesoporous organosilica

Periodic mesoporous organosilicas

Periodic mesoporous organosilicas PMOs)

Periodic mesoporous organosilicas organic groups

Periodic mesoporous organosilicas, PMO

Prepared mesoporous organosilicas

Prepared mesoporous organosilicas PMOs)

Sulfonic Acid Functionalization of Ordered Mesoporous Materials and Periodic Organosilicas

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