Search results for "note"

showing 10 items of 10709 documents

Crystal structure of di-μ-isobutyrato-κ(4) O:O'-bis-[cis-di-chlorido-(dimethyl sulfoxide-κS)rhenium(III)].

2015

A binuclear bis­(carboxyl­ato)dirhenium(III) complex is reported. The compound is a representative of a small class of alkyl­carboxyl­ate complexes involving a quadruple metal–metal bonds

crystal structurechemistry.chemical_elementNanotechnologyCrystal structureChlorideIonResearch CommunicationsCrystalchemistry.chemical_compoundquadruple metal–metal bondalkylcarboxylate complexmedicineCluster (physics)General Materials ScienceclusterCrystallographyDimethyl sulfoxideHydrogen bondGeneral ChemistryRheniumCondensed Matter Physicshydrogen bondingrhenium(III)CrystallographychemistryQD901-999alkyl­carboxyl­ate complexmedicine.drugActa crystallographica. Section E, Crystallographic communications
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Crystal structure of chlorido(2-{[2-(4-chlorophenyl)hydrazin-1-ylidene-κN1](phenyl)methyl}pyridine-κN)(η5-pentamethylcyclopentadienyl)iridium(III) te…

2015

The title compound, [Ir(η5-C5Me5)Cl(C18H14ClN3)]B(C6H5)4, is chiral at the metal center and crystallizes as a racemate. In the cation, the hydrazinylidenepyridine ligand isN,N-coordinated through theN-pyridyl andN-hydrazinylidene groups forming a five-membered metallacycle. An intramolecular C—H...Cl hydrogen bond is observed. In the crystal, centrosymmetrically-related cations are connected by C—Cl...π interactions, forming a dimeric structure. The crystal packing is further stabilized by weak interionic C—H...π interactions.

crystal structurechemistry.chemical_elementNanotechnologyCrystal structureC—H⋯π inter­actionsintramolecular C—H...Cl hydrogen bondMedicinal chemistryhydrazinyl­idene­pyridine ligandpenta­methyl­cyclo­penta­dien­ylMetallcsh:Chemistrychemistry.chemical_compoundC—H...π interactionsPyridineGeneral Materials SciencepentamethylcyclopentadienylIridiumC—Cl...π interactionsbiologyLigandHydrogen bondintra­molecular C—H⋯Cl hydrogen bondiridium(III) complexGeneral ChemistryMetallacycleCondensed Matter Physicsbiology.organism_classificationData Reportshydrazinylidenepyridine ligandchemistrylcsh:QD1-999visual_artC—Cl⋯π inter­actionsvisual_art.visual_art_mediumTetraActa Crystallographica Section E: Crystallographic Communications
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Crystal structure of 5-{3-[2,6-dimethyl- 4-(5-methyl-1,2,4-oxadiazol-3-yl)phenoxy]propyl}- N-(11-hydroxyundecyl)isoxazole-3-carboxamide hemihydrate

2015

The crystal structure and supra­molecular features of 5-{3-[2,6-dimethyl-4-(5-methyl-1,2,4-oxa­diazol-3-yl)phen­oxy]prop­yl}-N-(11-hy­droxy­undec­yl)isoxazole-3-carboxamide hemihydrate, a derivative of anti­viral ‘WIN compounds’, are reported.

crystal structuremedicine.drug_classOxadiazoleCarboxamideNanotechnologyCrystal structureDihedral angleRing (chemistry)Medicinal chemistryResearch Communicationschemistry.chemical_compoundmedicinePeptide bondGeneral Materials ScienceIsoxazoleta116oxa­diazoleCrystallographyChemistryHydrogen bondWIN derivativeisoxazoleGeneral ChemistryCondensed Matter PhysicsantiviralQD901-999anti­viraloxadiazoleActa Crystallographica Section E : Crystallographic Communications
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Poly[1-ethyl-3-methylimidazolium [tri-μ-isothiocyanato-manganate(II)]]

2019

The title compound, {(C9H11N2)[Mn(NCS)3]} n , has been obtained as a side product of the salt metathesis reaction of 1-ethyl-3-methylimidazolium bromide, (EMIm)Br, and K2[Mn(NCS)4]. The structure consists of discrete 1-ethyl-3-methylimidazolium cations and an anionic two-dimensional network of manganese(II)-based complex anions, interconnected by thiocyanate ions. Every Mn2+ ion is coordinated by three S atoms of three NCS− ions and three N atoms of further three NCS− ions in a meridional octahedral fashion.

crystal structurethiocyanateThiocyanateManganatechemistry.chemical_elementThio-02 engineering and technologyCrystal structureManganese010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesMedicinal chemistry0104 chemical scienceschemistry.chemical_compoundnetwork structurechemistryBromideIonic liquidmanganeselcsh:QD901-999Salt metathesis reactionlcsh:Crystallography0210 nano-technologyionic liquidIUCrData
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Organic films for the conservation of archaeological artefacts in bronze: evaluation of corrosion protection by surface analytical techniques

2008

cultural heritage bronze nanotechnology
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Towards a "fingerprint" of paper network; separating forgeries from genuine by the properties of fibre structure

2014

A novel method is introduced for distinguishing counterfeit banknotes from genuine samples. The method is based on analyzing differences in the networks of paper fibers. The main tool is a curvelet-based algorithm for measuring the distribution of overall fiber orientation and quantifying its anisotropy. The use of a couple or more appropriate parameters makes it possible to distinguish forgeries from genuine samples as concentrated point clouds in a two- or three-dimensional parameter space. Furthermore, the techniques of making watermarks is investigated by comparing genuine and counterfeit e50 banknotes. In addition, the so-called wire markings are shown to differ significantly from each…

curveletforensic sciencecounterfeit banknotesber networkber orientation
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Comparative Surface Morphology, Chemical Composition, and Cytocompatibility of Bio-C Repair, Biodentine, and ProRoot MTA on hDPCs

2020

Biocompatibility is an essential property for any vital pulp material that may interact with the dental pulp tissues. Accordingly, this study aimed to compare the chemical composition and ultrastructural morphology of Biodentine (Septodont, Saint Maur-des-Fosses, France), ProRoot MTA (Dentsply Tulsa Dental Specialties, Johnson City, TN, USA), and Bio-C Repair (Angelus, Londrina, PR, Brazil), as well as their biological effects on human dental pulp cells. Chemical element characterization of the materials was undertaken using scanning electron microscopy and energy dispersive X-ray analysis (SEM-EDX). The cytotoxicity was assessed by analyzing the cell viability (MTT assay), cell morphology …

cytocompatibilityBiocompatibilityvital pulp materialschemistry.chemical_element02 engineering and technologyCalciumCell morphologylcsh:TechnologyArticleFlow cytometry03 medical and health sciences0302 clinical medicinestomatognathic systemdental pulp cellsmedicineGeneral Materials ScienceMTT assayViability assaycalcium silicate materialsCytotoxicitylcsh:Microscopylcsh:QC120-168.85calcium silicate materialmedicine.diagnostic_testlcsh:QH201-278.5Chemistrylcsh:Tdental pulp cell030206 dentistry021001 nanoscience & nanotechnologystomatognathic diseasesendodonticlcsh:TA1-2040Pulp (tooth)lcsh:Descriptive and experimental mechanicslcsh:Electrical engineering. Electronics. Nuclear engineering0210 nano-technologylcsh:Engineering (General). Civil engineering (General)lcsh:TK1-9971Nuclear chemistryMaterials
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Mantojuma masas reālā sadale

2017

Bakalaura darba temats ir “Mantojuma masas reālā sadale”. Tas ir nozīmīgs mantojuma tiesību aspekts, ar ko jāsaskaras katram mantiniekam, ja mantojums ir piekritis vienlaicīgi vairākām personām. Darba mērķis ir izpētīt līdzmantinieku savstarpējās attiecības, tiesības prasīt mantojuma dalīšanu, mantojuma kopvaldījuma izbeigšanu, dalāmās mantas noteikšanu, iepriekšēji saņemtā pievienojumu un mantojuma masas reālo sadali. Mērķi tiks sasniegti, analizējot normatīvos aktus, salīdzinot juridiskajā literatūrā paustās atziņas un pētot mantojuma tiesību institūta vēsturisko attīstību, kā rezultātā tiks identificēti problēmjautājumi, kas šobrīd skar līdzmantinieku savstarpējās attiecības un mantojuma…

dalāmās mantojuma masas noteikšanamantojuma kopvaldījumslīdzmantinieku savstarpējās attiecībastiesības prasīt mantojuma dalīšanuiepriekšēji saņemtā pievienojumsJuridiskā zinātne
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Iontophoresis: electrorepulsion and electroosmosis.

2000

Over the last 10-15 years, the electrical enhancement of drug delivery across the skin has undergone intense investigation. During this period, considerable amounts of experimental data have been generated, and the successful enhancement of a diverse array of molecules has been achieved. Indeed, the commercial exploitation of the method can be envisaged within the next few years. Despite this progress, however, the mechanistic understanding of iontophoresis remains a challenging scientific question that is yet to be fully resolved. The routes of permeation under the influence of an applied electrical potential, and the molecular interactions of the transporting drug with these pathways, hav…

ddc:615Molecular interactionsOsmosisIontophoresisChemistryPharmaceutical ScienceNanotechnologyIontophoresisAdministration CutaneousDrug Delivery SystemsPharmaceutical technologyElectricitySkin Physiological PhenomenaDrug deliveryDrug Delivery Systems/methodsJournal of controlled release : official journal of the Controlled Release Society
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Tuning the Photoresponse of Nano‐Heterojunction: Pressure‐Induced Inverse Photoconductance in Functionalized WO 3 Nanocuboids

2019

S.R. and S.S. contributed equally to this work. This work was mainly supported by the Natural Science Foundation of China (Grant No. 11874076), National Science Associated Funding (NSAF, Grant No. U1530402), and Science Challenging Program (Grant No. TZ2016001). D.E. thanks the financial support from Spanish MINECO under Grant No. MAT2016-75586-C4-1-P and from Generalitat Valenciana under Grant Prometeo/2018/123, EFIMAT. The X-ray diffraction measurements were performed at the BL15U1 station, Shanghai Synchrotron Radiation Facility (SSRF) in China. The HP XAS measurements were performed at 20 ID-C, APS, ANL. APS is supported by DOE-BES, under contract no. DE-AC02-06CH11357. The authors grat…

decompressionPhase transitionMaterials scienceBand gapGeneral Chemical Engineeringinverse photoconductivityGeneral Physics and AstronomyMedicine (miscellaneous)02 engineering and technology010402 general chemistryPolaron01 natural sciencesBiochemistry Genetics and Molecular Biology (miscellaneous)Electrical resistivity and conductivityNano-:NATURAL SCIENCES:Physics [Research Subject Categories]General Materials Sciencelcsh:Sciencepolaronsnano‐heterojunctionsbusiness.industryPhotoconductivityGeneral EngineeringHeterojunctionnano-heterojunctions021001 nanoscience & nanotechnologycompression0104 chemical sciencesphase transitionOptoelectronicslcsh:QCharge carrier0210 nano-technologybusinesscharge carriersAdvanced Science
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