Marie-Anne Dourges
University of Bordeaux
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Marie-Anne Dourges.
Fuel | 2003
M Dumont; Marie-Anne Dourges; René Pailler; Xavier Bourrat
Synthetic mesophase pitches, produced from naphthalene (ARA24, ARA24r), were examined in terms of fluidity and thermal stability in comparison with other mesophase, isotropic pitches, or mesophase pitch/softening molecules blends. Their interest for carbon/carbon (C/C) composites processing by liquid impregnation or vacuum transfer inside three-dimensional carbon preform is discussed. Viscosity versus reduced temperature plots is reported on the same graph to compare the studied pitches and to define a suitable C/C processing window. Methylnaphthalene-based pitch is a good candidate with viscosity and stability adapted to the processing temperature and high carbon yield.
ACS Applied Materials & Interfaces | 2018
Szu-Hsuan Lee; Vardan Galstyan; Andrea Ponzoni; Isabel Gonzalo-Juan; Ralf Riedel; Marie-Anne Dourges; Yohann Nicolas; Thierry Toupance
Tin dioxide (SnO2) nanoparticles were straightforwardly synthesized using an easily scaled-up liquid route that involves the hydrothermal treatment, either under acidic or basic conditions, of a commercial tin dioxide particle suspension including potassium counterions. After further thermal post-treatment, the nanomaterials have been thoroughly characterized by Fourier transform infrared and Raman spectroscopy, powder X-ray diffraction, transmission electron microscopy, X-ray photoelectron spectroscopy, and nitrogen sorption porosimetry. Varying pH conditions and temperature of the thermal treatment provided cassiterite SnO2 nanoparticles with crystallite sizes ranging from 7.3 to 9.7 nm and Brunauer-Emmett-Teller surface areas ranging from 61 to 106 m2·g-1, acidic conditions favoring potassium cation removal. Upon exposure to a reducing gas (H2, CO, and volatile organic compounds such as ethanol and acetone) or oxidizing gas (NO2), layers of these SnO2 nanoparticles led to highly sensitive, reversible, and reproducible responses. The sensing results were discussed in regard to the crystallite size, specific area, valence band energy, Debye length, and chemical composition. Results highlight the impact of the counterion residuals, which affect the gas-sensing performance to an extent much higher than that of size and surface area effects. Tin dioxide nanoparticles prepared under acidic conditions and calcined in air showed the best sensing performances because of lower amount of potassium cations and higher crystallinity, despite the lower surface area.
Carbon | 2002
M Dumont; G. Chollon; Marie-Anne Dourges; René Pailler; Xavier Bourrat; R. Naslain; Jean-Luc Bruneel; M. Couzi
Carbon | 2005
M Dumont; Marie-Anne Dourges; Xavier Bourrat; René Pailler; R. Naslain; O. Babot; Marc Birot; J.-P. Pillot
Design, Development, and Applications of Engineering Ceramics and Composites | 2010
S. Le Ber; Marie-Anne Dourges; L. Maillé; René Pailler; Alain Guette
Composites Part A-applied Science and Manufacturing | 2013
Alixe Dekeyrel; Marie-Anne Dourges; Patrick Weisbecker; René Pailler; Alexandre Allemand; Nicolas Ténèze; Jean-François Epherre
Journal of Solid State Chemistry | 2014
J. Roger; L. Maillé; Marie-Anne Dourges
Applied Surface Science | 2012
L. Maillé; Marie-Anne Dourges; S. Le Ber; Patrick Weisbecker; F. Teyssandier; Y. Le Petitcorps; René Pailler
Journal of Materials Science | 2009
Pierre Baudry; Marie-Anne Dourges; René Pailler
Journal of The European Ceramic Society | 2014
L. Maillé; S. Le Ber; Marie-Anne Dourges; René Pailler; Alain Guette; J. Roger