Search results for " sodium"

showing 10 items of 196 documents

CCDC 609184: Experimental Crystal Structure Determination

2007

Related Article: J.R.G.Mascaros, C.Marti-Gastaldo|2007|Polyhedron|26|626|doi:10.1016/j.poly.2006.08.030

Space GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinatestetrakis(12-Ethylenediammonium) sodium (mu~6~-phosphito)-tris(mu~2~-hydrogenphosphito)-hexakis(mu~2~-oxo)-dodecaoxo-hexa-molybdenum(vi) trihydrate
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CCDC 1053437: Experimental Crystal Structure Determination

2016

Related Article: Tamires S. Fernandes, Ramon S. Vilela, Ana K. Valdo, Felipe T. Martins, Enrique García-España, Mario Inclán, Joan Cano, Francesc Lloret, Miguel Julve, Humberto O. Stumpf, and Danielle Cangussu|2016|Inorg.Chem.|55|2390|doi:10.1021/acs.inorgchem.5b02786

Space GroupCrystallographyCrystal SystemCrystal StructureCell ParametersPotassium sodium bis(tetramethylammonium) bis(mu2-NN'-26-pyridinebis(oxamato))-di-copper hydrateExperimental 3D Coordinates
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CCDC 1996428: Experimental Crystal Structure Determination

2020

Related Article: Júlia Mayans, Constantinos C. Stoumpos, Mercé Font-Bardia, Albert Escuer|2020|Chem.-Eur.J.|26|11158|doi:10.1002/chem.202001900

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameterstriethylammonium sodium tris(mu-hydroxybis(pyridin-2-yl)methanolato)-tris(mu-pyrazolato)-hexakis(mu-azido)-(mu-carbonato)-hexa-nickel(ii) acetonitrile unknown solvate hydrateExperimental 3D Coordinates
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CCDC 1512902: Experimental Crystal Structure Determination

2017

Related Article: Shobhraj Haldar, Gonela Vijaykumar, Luca Carrella, Steven Batha, Ghezai T. Musie, Manindranath Bera|2017|ACS Omega|2|1535|doi:10.1021/acsomega.7b00189

Space GroupCrystallographyCrystal SystemCrystal Structurebis(oxonium) sodium ((mu-hydrogen phosphato)-bis(mu-22'-((2-oxidopropane-13-diyl)bis((((pyridin-2-yl)methyl)azanediyl)methylene))dibenzoato)-tetra-zinc) trichloride hydrateCell ParametersExperimental 3D Coordinates
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CCDC 1996427: Experimental Crystal Structure Determination

2020

Related Article: Júlia Mayans, Constantinos C. Stoumpos, Mercé Font-Bardia, Albert Escuer|2020|Chem.-Eur.J.|26|11158|doi:10.1002/chem.202001900

Space GroupCrystallographyCrystal SystemCrystal Structurebis(triethylammonium) potassium sodium bis(tris(mu-hydroxybis(pyridin-2-yl)methanolato)-tris(mu-pyrazolato)-hexakis(mu-azido)-(mu-carbonato)-hexa-nickel(ii)) unknown solvate dihydrateCell ParametersExperimental 3D Coordinates
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CCDC 1538253: Experimental Crystal Structure Determination

2018

Related Article: Yan Duan, Juan M. Clemente-Juan, Carlos Giménez-Saiz, Eugenio Coronado|2018|Frontiers in Chemistry|6|231|doi:10.3389/fchem.2018.00231

Space GroupCrystallographyCrystal SystemCrystal Structurepotassium sodium hexa-aqua-cobalt(ii) bis(mu-phosphato)-hexakis(mu-hydroxo)-dotetracontakis(mu-oxo)-hexa-aqua-octadecaoxo-cobalt(iii)-hexa-cobalt(ii)-octadeca-tungsten nonadecahydrateCell ParametersExperimental 3D Coordinates
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CCDC 602231: Experimental Crystal Structure Determination

2007

Related Article: H.Fleischer, S.Hardt, D.Schollmeyer|2006|Inorg.Chem.|45|8318|doi:10.1021/ic0604765

Space GroupCrystallographyCrystal Systemcatena-((mu2-2-Aminoethanethiolato)-chloro-mercury(ii) sodium hydroxide dihydrate)Crystal StructureCell ParametersExperimental 3D Coordinates
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Halloysite nanotubes filled with salicylic acid and sodium diclofenac: effects of vacuum pumping on loading and release properties

2021

AbstractIn this work, we investigated the effects of the vacuum pumping on both the loading efficiencies and the release kinetics of halloysite nanotubes filled with drug molecules dissolved in ethanol. As model drugs, salicylic acid and sodium diclofenac were selected. For comparison, the loading of the drug molecules was conducted on platy kaolinite to explore the key role of the hollow tubular morphology on the filling mechanism of halloysite. The effects of the pressure conditions used in the loading protocol were interpreted and discussed on the basis of the thermodynamic results provided by Knudsen thermogravimetry, which demonstrated the ethanol confinement inside the halloysite cavi…

Sustained release Clay nanoparticles Drug loading Halloysite nanotubes Knudsen thermogravimetryMaterials scienceKineticsNanochemistryDiclofenac Sodiumengineering.materialHalloysiteThermogravimetryChemical engineeringengineeringKaoliniteMoleculeFourier transform infrared spectroscopySettore CHIM/02 - Chimica FisicaJournal of Nanostructure in Chemistry
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Oleuropein protects against dextran sodium sulfate-induced chronic colitis in mice.

2013

The anti-inflammatory effect of oleuropein (1), the major phenolic secoiridoid in Olea europaea, was evaluated in an experimental model of chronic colitis in mice. Animals were exposed to four repeated cycles of dextran sodium sulfate in drinking water followed by a 7-day rest period. Animals receiving a standard diet supplemented with 0.25% of 1 (equivalent to 500 mg/kg/day) for 56 days exhibited a decrease of inflammatory symptoms, as reflected by improvement of disease activity index and histopathological changes. It was found that 1 decreased inflammatory cell recruitment and the release of inflammatory cytokines interleukin (IL)-1β and IL-6 with increased IL-10 levels in colon tissue. …

T-LymphocytesInterleukin-1betaIridoid GlucosidesAnti-Inflammatory AgentsPharmaceutical ScienceNitric Oxide Synthase Type IIPharmacologyp38 Mitogen-Activated Protein KinasesAnalytical Chemistrychemistry.chemical_compoundMiceOleuropeinOleaDrug DiscoveryAnimalsIridoidsIntestinal MucosaChronic colitisPyransPharmacologybiologyMolecular StructureExperimental modelInterleukin-6Organic ChemistryDextran Sulfatebiology.organism_classificationColitisInterleukin-10Mice Inbred C57BLComplementary and alternative medicinechemistryOleaCyclooxygenase 2Molecular MedicineDextran sodium sulfateJournal of natural products
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Nanocomposites of bacterial cellulose/hydroxyapatite for biomedical applications.

2008

In the present work, a nanocomposite material formed by bacterial cellulose (BC) networks and calcium-deficient hydroxyapatite (HAp) powders was synthesized and characterized. The HAp nanoparticles were previously prepared by a wet chemical precipitation method, starting from aqueous solutions of calcium nitrate and di-ammonium phosphate salts. Energy-dispersive spectroscopy reveals that the prepared HAp corresponds to calcium-deficient hydroxyapatite. BC-HAp nanocomposites were prepared by introducing carboxymethylcellulose (CMC) into the bacteria culture media. HAp nanoparticles were then introduced and remained suspended in the culture medium during the formation of cellulose nanofibrils…

Thermogravimetric analysisMaterials scienceBiocompatibilityBiomedical EngineeringAnalytical chemistryBiocompatible MaterialsMicroscopy Atomic ForceBiochemistryCell LineNanocompositesBiomaterialschemistry.chemical_compoundCrystallinityX-Ray DiffractionSpectroscopy Fourier Transform InfraredHumansCelluloseCelluloseMolecular BiologyNanocompositeBacteriaGeneral MedicineThermogravimetryDurapatitechemistryChemical engineeringBacterial celluloseAttenuated total reflectionCarboxymethylcellulose SodiumThermogravimetryPowdersBiotechnologyActa biomaterialia
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