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Hoffmann, R. A wiki for the life sciences where authorship matters. Nature Genetics (2008)
 
MeSH Review

Thermogravimetry

 
 
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Disease relevance of Thermogravimetry

  • A kinetic model for the dehydration of lithium sulfate monohydrate is proposed in order to account for experimental data obtained on single crystals by thermogravimetry at 80 degrees C under fixed water vapour pressure, and by optical microscopy [1].
 

High impact information on Thermogravimetry

  • Nitrogen adsorption provided strong evidence of the presence of uniformly sized pores and the lack of phase separation up to TEVS:TEOS ratios as high as 13:7 (65% TEVS loading), whereas (29)Si MAS NMR and high-resolution thermogravimetry showed essentially quantitative incorporation of the organosilane [2].
  • The inorganic phase in dentin with dentinogenesis imperfecta was investigated, using the correlated techniques of high resolution TEM, X-ray diffraction analyses, infrared absorption spectroscopy, thermogravimetry, and chemical and electron microprobe analyses [3].
  • Five new thiogallates have been prepared solvothermally in the presence of ethylenediamine and characterized by single-crystal X-ray diffraction, thermogravimetry, and elemental analysis [4].
  • High-resolution thermogravimetry (HR TG) was used to study the adsorption of mercury(II) ions by modified MCM-41 material and regeneration of the loaded adsorbent with mercury ions by using different eluents [5].
  • The influence of the niobium source on the structural properties and the incorporation of niobium species into the walls of FDU-1 molecular sieve were evaluated with the aforementioned techniques and thermogravimetry [6].
 

Biological context of Thermogravimetry

 

Anatomical context of Thermogravimetry

 

Associations of Thermogravimetry with chemical compounds

 

Gene context of Thermogravimetry

  • From an experimental point of view, the freezing water was determined by DSC when the total sorbed water was obtained from thermogravimetry [15].
 

Analytical, diagnostic and therapeutic context of Thermogravimetry

References

  1. Experimental study and Monte-Carlo simulation of the nucleation and growth processes during the dehydration of Li2SO4.H2O single crystals. Favergeon, L., Pijolat, M., Valdivieso, F., Helbert, C. Physical chemistry chemical physics : PCCP. (2005) [Pubmed]
  2. Metamorphosis of ordered mesopores to micropores: periodic silica with unprecedented loading of pendant reactive organic groups transforms to periodic microporous silica with tailorable pore size. Kruk, M., Asefa, T., Jaroniec, M., Ozin, G.A. J. Am. Chem. Soc. (2002) [Pubmed]
  3. The inorganic phase in dentinogenesis imperfecta. Kerebel, B., Daculsi, G., Menanteau, J., Kerebel, L.M. J. Dent. Res. (1981) [Pubmed]
  4. From one-dimensional chains to three-dimensional networks: solvothermal synthesis of thiogallates in ethylenediamine. Vaqueiro, P. Inorganic chemistry. (2006) [Pubmed]
  5. Thermogravimetric studies of benzoylthiourea-modified MCM-41 after adsorption of mercury ions from aqueous solutions. Olkhovyk, O., Antochshuk, V., Jaroniec, M. The Analyst. (2005) [Pubmed]
  6. Three-dimensional cubic mesoporous molecular sieves of FDU-1 containing niobium: dependence of niobium source on structural properties. Nowak, I., Jaroniec, M. Langmuir : the ACS journal of surfaces and colloids. (2005) [Pubmed]
  7. The crystallization kinetics of sodalites grown by the hydrothermal transformation of kaolinite studied by 29Si MAS NMR. Buhl, J.C., Hoffmann, W., Buckermann, W.A., Müller-Warmuth, W. Solid state nuclear magnetic resonance. (1997) [Pubmed]
  8. Structural analysis of turkey tendon collagen upon removal of the inorganic phase. Bigi, A., Ripamonti, A., Cojazzi, G., Pizzuto, G., Roveri, N., Koch, M.H. Int. J. Biol. Macromol. (1991) [Pubmed]
  9. Short-term effects of secretagogues on the mouse parotid and sublingual gland tissular water. Materazzi, S., Curini, R., Gabrielli, M.G., Fava, L., Menghi, G. Cell. Mol. Biol. (Noisy-le-grand) (1996) [Pubmed]
  10. Controlled release of clozapine through chitosan microparticles prepared by a novel method. Agnihotri, S.A., Aminabhavi, T.M. Journal of controlled release : official journal of the Controlled Release Society. (2004) [Pubmed]
  11. Correlation of kinetic parameters and thermal behavior of segmented polyurethane elastomers with biological responses. Hung, G.W., Nunez, L.J., Autian, J. Journal of pharmaceutical sciences. (1975) [Pubmed]
  12. Polymorphism of rac-5,6-diisobutyryloxy-2-methylamino-1,2,3,4-tetrahydro-naphthalene hydrochloride (CHF 1035). I. Thermal, spectroscopic, and X-ray diffraction properties. Giordano, F., Rossi, A., Moyano, J.R., Gazzaniga, A., Massarotti, V., Bini, M., Capsoni, D., Peveri, T., Redenti, E., Carima, L., Dagli Alberi, M., Zanol, M. Journal of pharmaceutical sciences. (2001) [Pubmed]
  13. Comparative thermogravimetric and adsorption study of highly ordered mesoporous materials. Mercuri, L.P., Matos, J.R., Li, Z., Jaroniec, M. Journal of colloid and interface science. (2006) [Pubmed]
  14. Interface effects on mechanical properties of particle-reinforced composites. Debnath, S., Ranade, R., Wunder, S.L., McCool, J., Boberick, K., Baran, G. Dental materials : official publication of the Academy of Dental Materials. (2004) [Pubmed]
  15. Characterisation of sorbed water molecules on neutral and ionic polysaccharides. Fringant, C., Desbrières, J., Milas, M., Rinaudo, M., Joly, C., Escoubes, M. Int. J. Biol. Macromol. (1996) [Pubmed]
  16. Synthesis, characterization and DNA-binding properties of La(III) complex of chrysin. Zeng, Y.B., Yang, N., Liu, W.S., Tang, N. J. Inorg. Biochem. (2003) [Pubmed]
 
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