Search results for "parameter"

showing 10 items of 14056 documents

Chewing simulation: a way to understand the relationships between mastication, food breakdown and flavour release

2010

International audience; Understanding in-mouth mechanisms is necessary to understand flavour release and perception phenomena. To overcome the limitations of in-vivo flavour release measurements, we developed a chewing simulator that faithfully reproduced many mouth functions. Using brittle foods, we showed that in-vitro food breakdown was very comparable to that obtained in-vivo. We also studied on model cheeses in-vitro flavour release by connecting on-line the chewing simulator to APCI-MS. Preliminary results are discussed.

stomatognathic systemFLAVOUR RELEASE[SPI.GPROC] Engineering Sciences [physics]/Chemical and Process EngineeringFOOD MATRIXdigestive oral and skin physiology[SDV.IDA]Life Sciences [q-bio]/Food engineeringORAL PARAMETERS[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process Engineering[SDV.IDA] Life Sciences [q-bio]/Food engineeringMASTICATION SIMULATOR
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Odd triplet superconductivity induced by a moving condensate

2020

It has been commonly accepted that a magnetic field suppresses superconductivity by inducing the ordered motion of Cooper pairs. We demonstrate that a magnetic field can instead provide a generation of superconducting correlations by inducing the motion of a superconducting condensate. This effect arises in superconductor/ferromagnet heterostructures in the presence of Rashba spin-orbital coupling. We predict the odd-frequency spin-triplet superconducting correlations called the Berezinskii order to be switched on at large distances from the superconductor/ferromagnet interface by the application of a magnetic field. This is shown to result in the unusual behavior of Josephson effect and lo…

superconducting phase transitionRashba couplingsuprajohtavuusCondensed Matter::SuperconductivityJosephson effectodd-frequency superconductivityCondensed Matter::Mesoscopic Systems and Quantum Hall Effectmagneettikentätsuperconducting order parametersuprajohteet
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Mean-field theory for superconductivity in twisted bilayer graphene

2018

Recent experiments show how a bilayer graphene twisted around a certain magic angle becomes superconducting as it is doped into a region with approximate flat bands. We investigate the mean-field s-wave superconducting state in such a system and show how the state evolves as the twist angle is tuned, and as a function of the doping level. We argue that part of the experimental findings could well be understood to result from an attractive electron-electron interaction mediated by electron-phonon coupling, but the flat-band nature of the excitation spectrum also makes the superconductivity quite unusual. For example, as the flat-band states are highly localized around certain spots in the st…

superconducting phase transitionsuperconducting gapsuprajohtavuusCondensed Matter::Superconductivitygrafeenisuperconducting order parameter
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CCDC 846271: Experimental Crystal Structure Determination

2012

Related Article: G.Callebaut, S.Mangelinckx, L.Kiss, R.Sillanpaa, F.Fulop, N.De Kimpe|2012|Org.Biomol.Chem.|10|2326|doi:10.1039/c2ob06637h

syn-Ethyl 4-chloro-N-(diphenylmethylene)-3-(((4-methylphenyl)sulfinyl)amino)leucinateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 604222: Experimental Crystal Structure Determination

2007

Related Article: K.Ejsmont, R.Gajda, M.Makowski|2007|Acta Crystallogr.,Sect.C:Cryst.Struct.Commun.|63|o80|doi:10.1107/S0108270106052590

t-Butoxycarbonylglycyl-dehydroalanyl-glycine methyl esterSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1444032: Experimental Crystal Structure Determination

2016

Related Article: Fares Ibrahim Amr, Carlos Vila, Gonzalo Blay, M. Carmen Muñoz and José R. Pedro|2016|Adv.Synth.Catal.|358|1583|doi:10.1002/adsc.201600036

t-butyl (1-benzyl-5-chloro-3-(34-dimethyl-5-oxo-1-phenyl-45-dihydro-1H-pyrazol-4-yl)-2-oxo-23-dihydro-1H-indol-3-yl)carbamateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 2092891: Experimental Crystal Structure Determination

2021

Related Article: Laura Carceller-Ferrer, Carlos Vila, Gonzalo Blay, M. Carmen Muñoz, José R. Pedro|2021|Org.Lett.|23|7391|doi:10.1021/acs.orglett.1c02571

t-butyl {1-(methoxymethyl)-3-[2-(3-methyl-5-oxo-1-phenyl-15-dihydro-4H-pyrazol-4-ylidene)propyl]-2-oxo-23-dihydro-1H-indol-3-yl}carbamateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1522803: Experimental Crystal Structure Determination

2017

Related Article: Aino J. Karhu, Juho Jämsä, J. Mikko Rautiainen, Raija Oilunkaniemi, Tristram Chivers and Risto S. Laitinen|2017|Z.Anorg.Allg.Chem.|643|495|doi:10.1002/zaac.201700031

t-butyl(chloroselanyl)selenamidous chlorideSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 662715: Experimental Crystal Structure Determination

2008

Related Article: J.Bould, A.Laromaine, N.J.Bullen, C.Vinas, M.Thornton-Pett, R.Sillanpaa, R.Kivekas, J.D.Kennedy, F.Teixidor|2008|Dalton Trans.||1552|doi:10.1039/b715845a

tetra-n-butylammonium 7-(o-cyanopyridine-N)-89:1011-dimuH-nido-undecaborateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1958345: Experimental Crystal Structure Determination

2020

Related Article: Raphael C. A. Vaz, Isabela O. Esteves, Willian X. C. Oliveira, João Honorato, Felipe T. Martins, Lippy F. Marques, Guilherme L. dos Santos, Ricardo O. Freire, Larissa T. Jesus, Emerson F. Pedroso, Wallace C. Nunes, Miguel Julve, Cynthia L. M. Pereira|2020|Dalton Trans.|49|16106|doi:10.1039/D0DT02497J

tetra-n-butylammonium tetrakis((4-fluoroanilino)(oxo)acetato)-(dimethyl sulfoxide)-terbium(iii) dihydrateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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