Search results for " Geometry."

showing 10 items of 2189 documents

Crystal structure of chlorido(2-{1-[2-(4-chlorophenyl)hydrazin-1-ylidene-κN]ethyl}pyridine-κN)(η5-pentamethylcyclopentadienyl)rhodium(III) chloride

2015

The title compound, [Rh(η5-C5Me5)Cl(C13H12ClN3)]Cl, is chiral at the metal and crystallizes as a racemate. Upon coordination, the hydrazinyl­idene­pyridine ligand is non-planar, an angle of 54.42 (7)° being observed between the pyridine ring and the aromatic ring of the [2-(4-chloro­phen­yl)hydrazin-1-yl­idene]ethyl group.

crystal structureNanotechnologyCrystal structureRing (chemistry)Medicinal chemistryResearch CommunicationsMetalpenta­methyl­cyclo­penta­dien­yllcsh:Chemistrychemistry.chemical_compoundPyridinepiano-stool geometryGeneral Materials SciencepentamethylcyclopentadienylEthyl grouprhodium(III) complexN—H⋯Cl hydrogen bondHydrogen bondLigandGeneral ChemistryRhodium(III) chlorideN—H...Cl hydrogen bondCondensed Matter Physicschemistrylcsh:QD1-999visual_artvisual_art.visual_art_mediumActa Crystallographica Section E: Crystallographic Communications
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Crystal structure of catena-poly[[[(2-ethoxypyrazine-κN)copper(I)]-di-μ2-cyanido] [copper(I)-μ2-cyanido]]

2019

The title compound, {[Cu(EtOpz)(CN)2][CuCN]}n, where EtOpz is 2-eth­oxy­pyrazine, is a two-dimensional polymeric copper complex with different coordination environments of the two CuI ions. One Cu atom is coordinated to the 2-eth­oxy­pyrazine mol­ecule and two bridging cyanide ligands, equally disordered over two sites. The second Cu atom is coordinated by two disordered over two sites bridging cyanide groups. Two copper–cyanide chains are connected through Cu⋯Cu contact.

crystal structurePyrazineCyanidechemistry.chemical_elementeth­oxy­pyrazineCrystal structure010402 general chemistry010403 inorganic & nuclear chemistry01 natural sciencesResearch CommunicationsCoordination complexmetal–organic frameworkchemistry.chemical_compoundAtomGeneral Materials ScienceCoordination geometrychemistry.chemical_classificationCrystallographyethoxypyrazinecyanidesGeneral ChemistryCondensed Matter PhysicsCoppercopper(I)0104 chemical sciencesCrystallographychemistryQD901-999Metal-organic frameworkActa Crystallographica Section E Crystallographic Communications
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Crystal structures of three mercury(II) complexes [HgCl2L] where L is a bidentate chiral imine ligand

2015

Three complexes synthesized by coordination of chiral imines to HgCl2 have been characterized, in which the tetra­hedral HgII centre has a geometry strongly distorted towards the disphenoidal geometry.

crystal structureSchiff baseDenticitymercuryStereochemistryIminechemistry.chemical_elementGeneral ChemistryCrystal structureLarge rangeBite angleCondensed Matter PhysicsResearch CommunicationsMercury (element)lcsh:Chemistrychemistry.chemical_compoundCrystallographySchiff basechemistrylcsh:QD1-999General Materials Sciencedisphenoidal geometryCoordination geometryActa Crystallographica Section E: Crystallographic Communications
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Geometrical and conformational preferences of the 9‐fluorenylmethoxycarbonyl‐amino moiety

2004

Structural parameters, originating from x-ray crystallographic data, have been compiled for 13 derivatives of amino acids, peptides and related compounds, which contain a total of 14 Fmoc-NH- moieties. For these moieties, molecular geometries and conformations--described by the omegao, theta1, theta2 and theta3' torsion angles--were analysed and compared with the corresponding parameters for the Z-NH- and Boc-NH-moieties (290 and 553, respectively). To gain a deeper insight into the conformational features of the Fmoc-NH- moiety, ab initio free molecule calculations were performed for fully relaxed minima. Also the potential energy surface as a function of the torsion angles (theta3', theta…

crystal structureStereochemistryAb initioMolecular ConformationCrystal structureCrystallography X-RayBiochemistryBoc amino protectionStructure-Activity RelationshipfluoreneStructural BiologyAb initio quantum chemistry methodsDrug DiscoveryMoleculeMoietyurethane geometryFmoc amino protectionAmino AcidsMolecular BiologyPharmacologyFluorenesMolecular StructureChemistryHydrogen bondab initio calculationsOrganic ChemistryHydrogen BondingGeneral MedicineZ amino protectionMolecular geometryPotential energy surfaceMolecular MedicineCrystallizationPeptidesN‐terminally protected peptidesJournal of Peptide Science
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Crystal structure of bis(cyclohexylammonium) diphenyldioxalatostannate(IV)

2015

In the title salt, (CyNH3)2[Sn(Ph2)(C2O4)2] (Cy is cyclo­hexyl and Ph is phen­yl), the SnPh2 moiety is chelated by two oxalate anions, leading to a cis arrangement within the distorted octa­hedral coordination sphere of the SnIV atom.

crystal structureStereochemistryOxalic acidcyclo­hexyl­ammoniumorganotin(IV) compoundSalt (chemistry)Crystal structureMedicinal chemistryOxalateResearch CommunicationsCrystalchemistry.chemical_compoundMoietyGeneral Materials ScienceCoordination geometrychemistry.chemical_classificationCrystallographycis arrangementHydrogen bondoxalate ligandsGeneral ChemistryCondensed Matter PhysicschemistryQD901-999N—H...O hydrogen bondingN—H⋯O hydrogen bondingcyclohexylammoniumActa Crystallographica Section E: Crystallographic Communications
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Crystal structure of bis[2,5-bis(pyridin-2-yl)-1,3,4-thiadiazole-κ2N2,N3]bis(thiocyanato-κS)copper(II)

2016

The structure of the title compound is similar to that of the related complexes [Co(C12H8N4S)2(N3)2] and [Ni(C12H8N4S)2(N3)2] in which the azide ion is substituted by the thio­cyanate group. The CuN4S2 octa­hedron is more distorted than the CoN6 and NiN6 octa­hedra.

crystal structureStereochemistrychemistry.chemical_elementThio-Crystal structure010402 general chemistry010403 inorganic & nuclear chemistry01 natural sciencesChlorideResearch CommunicationsMetalchemistry.chemical_compoundmedicine25-bis(pyridin-2-yl)-134-thiadiazoleGeneral Materials Sciencecopper complexCoordination geometrythio­cyanate ligandCrystallographyHydrogen bondGeneral Chemistrythiocyanate ligandCondensed Matter PhysicsCopper0104 chemical sciencesCrystallographychemistryQD901-999visual_artvisual_art.visual_art_mediumDiazole25-bis­(pyridin-2-yl)-134-thia­diazolemedicine.drugActa Crystallographica Section E Crystallographic Communications
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Crystal structure of a rare trigonal bipyramidal titanium(IV) coordination complex: trichlorido(3,3′-di-tert-butyl-2′-hydroxy-5,5′,6,6′-tetramethyl-1…

2017

The title compound, [Ti(C24H33O2)Cl3(C4H8O)], is a rare example of a trigonal–bipyramidal titanium coordination complex with three chloride and two oxygen donor ligands. The asymmetric unit contains two independent molecules having essentially the same conformation. The molecules feature the titanium(IV) metal cation complexed with three chloride ligands, a tetrahydrofuran molecule, and one oxygen atom from the resolved ligand precursor (R)-(+)-5,5′,6,6′-tetramethyl-3,3′-di-t-butyl-1,1′-biphenyl-2,2′-diol, where the remaining phenolic hydrogen atom engages in intermolecular O—H...Cl hydrogen bonding. In one molecule, the THF ligand is disordered over two orientations with refined site occup…

crystal structureStereochemistrytitanium in trigonal–bipyramidal coordinationchemistry.chemical_elementcoordination complexCrystal structure010402 general chemistry010403 inorganic & nuclear chemistry01 natural sciencesMedicinal chemistryCoordination complexchemistry.chemical_compoundFuranGeneral Materials Sciencechemistry.chemical_classificationCrystallographybiologyHydrogen bondLigandGeneral ChemistryCondensed Matter Physicsbiology.organism_classification0104 chemical sciencesTrigonal bipyramidal molecular geometrychemistryQD901-999TetraTitaniumActa Crystallographica Section E: Crystallographic Communications
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A second solvatomorph of poly[[μ4-N,N′-(1,3,5-oxadiazinane-3,5-diyl)bis(carbamoylmethanoato)]nickel(II)dipotassium] : crystal structure, Hirshfeld su…

2021

The title compound, poly[triaquabis[μ4-N,N′-(1,3,5-oxadiazinane-3,5-diyl)bis(carbamoylmethanoato)]dinickel(II)tetrapotassium], [K4Ni2(C7H6N4O7)2(H2O)3] n , is a second solvatomorph of poly[(μ4-N,N′-(1,3,5-oxadiazinane-3,5-diyl)bis(carbamoylmethanoato)nickel(II)dipotassium] reported previously [Plutenko et al. (2021). Acta Cryst. E77, 298–304]. The asymmetric unit of the title compound includes two structurally independent complex anions [Ni(C7H6N4O7)]2−, which exhibit an L-shaped geometry and consist of two almost flat fragments perpendicular to one another: the 1,3,5-oxadiazinane fragment and the fragment including other atoms of the anion. The central Ni atom is in a square-planar N2O2 co…

crystal structureshape analysischemistry.chemical_elementCrystal structureEnergy minimizationIonpseudomacrocyclic ligandCrystalchemistry.chemical_compoundtemplate reactionSHAPE analysisAmidehirshfeld surface analysisAtomHirshfeld surface analysisGeneral Materials Sciencesemi-empirical geometry optimizationCrystallographynickel(ii) complexGeneral ChemistrykompleksiyhdisteetCondensed Matter Physicsnickel(II) complexkiteetTemplate reactionNickelCrystallographychemistryQD901-999nikkelihydrazide-based ligand
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Approximation of pore space with ellipsoids: a comparison of a geometrical method with a statistical one.

2018

International audience; We work with tomographic images of pore space in soil. The images have large dimensions and so in order to speed-up biological simulations (as drainage or diffusion process in soil), we want to describe the pore space with a number of geometrical primitives significantly smaller than the number of voxels in pore space. In this paper, we use the curve skeleton of a volume to segment it into some regions. We describe the method to compute the curve skeleton and to segment it with a simple segment approximation. We approximate each obtained region with an ellipsoid. The set of final ellipsoids represents the geometry of pore space and will be used in future simulations.…

curve skeletonsegmentationComputingMethodologies_IMAGEPROCESSINGANDCOMPUTERVISION[INFO] Computer Science [cs][SPI.MAT] Engineering Sciences [physics]/Materials[INFO.INFO-CG]Computer Science [cs]/Computational Geometry [cs.CG]GeneralLiterature_MISCELLANEOUSPhysics::Geophysics[SPI.MAT]Engineering Sciences [physics]/Materialsellipsoids[INFO.INFO-CG] Computer Science [cs]/Computational Geometry [cs.CG][INFO]Computer Science [cs]Pore space approximationComputingMethodologies_COMPUTERGRAPHICS
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Mechanical Detection of the De Haas–van Alphen Effect in Graphene

2022

Funding Information: We thank V. Falko, M. Kumar, and S. Paraoanu for useful discussions. This work was supported by the Academy of Finland projects 314448 (BOLOSE) and 336813 (CoE, Quantum Technology Finland) as well as by ERC (grant no. 670743). The research leading to these results has received funding from the European Unions Horizon 2020 Research and Innovation Programme, under Grant Agreement no 824109, and the experimental work benefited from the Aalto University OtaNano/LTL infrastructure. A.L. is grateful to Osk. Huttunen foundation for a scholarship. J.M. thanks the Väisälä Foundation of the Finnish Academy of Science and Letters for support. F.M. acknowledges financial support fr…

de Haas-van Alphen effectde Haas−van Alphen effectMechanical EngineeringgraphenegrafeeniGeneral Materials ScienceBioengineeringGeneral ChemistryCondensed Matter PhysicsCorbino geometrynanomechanicsNano Letters
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