Literature DB >> 20938516

Analytical electron tomography mapping of the SiC pore oxidation at the nanoscale.

Ileana Florea1, Ovidiu Ersen, Charles Hirlimann, Lucian Roiban, Adrien Deneuve, Matthieu Houllé, Izabela Janowska, Patrick Nguyen, Charlotte Pham, Cuong Pham-Huu.   

Abstract

Silicon carbide is a ceramic material that has been widely studied because of its potential applications, ranging from electronics to heterogeneous catalysis. Recently, a new type of SiC materials with a medium specific surface area and thermal conductivity, called β-SiC, has attracted overgrowing interest as a new class of catalyst support in several catalytic reactions. A primary electron tomography study, performed in usual mode, has revealed a dual surface structure defined by two types of porosities made of networks of connected channels with sizes larger than 50 nm and ink-bottled pores with sizes spanning from 4 to 50 nm. Depending on the solvent nature, metal nanoparticles could be selectively deposited inside one of the two porosities, a fact that illustrates a selective wetting titration of the two types of surfaces by different liquids. The explaining hypothesis that has been put forward was that this selectivity against solvents is related to the pore surface oxidation degree of the two types of pores. A new technique of analytical electron tomography, where the series of projections used to reconstruct the volume of an object is recorded in energy filtered mode (EFTEM), has been implemented to map the pore oxidation state and to correlate it with the morphology and the accessibility of the porous network. Applied, for the first time, at a nanoscale resolution, this technique allowed us to obtain 3D elemental maps of different elements present in the analysed porous grains, in particular oxygen; we found thus that the interconnected channel pores are more rapidly oxidized than the ink-bottled ones. Alternatively, our study highlights the great interest of this method that opens the way for obtaining precise information on the chemical composition of a 3D surface at a nanometer scale.

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Year:  2010        PMID: 20938516     DOI: 10.1039/c0nr00449a

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  1 in total

1.  Nickel Sulfides Decorated SiC Foam for the Low Temperature Conversion of H₂S into Elemental Sulfur.

Authors:  Cuong Duong-Viet; Lam Nguyen-Dinh; Yuefeng Liu; Giulia Tuci; Giuliano Giambastiani; Cuong Pham-Huu
Journal:  Molecules       Date:  2018-06-25       Impact factor: 4.411

  1 in total

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