Search results for "Faces"

showing 10 items of 3167 documents

Triplet exciplexes as energy transfer photosensitisers

2006

Experimental evidence is provided for the occurrence of triplet–triplet energy transfer from benzoylthiophene–indole exciplexes to naphthalenes with a remarkable stereodifferentiation; chiral recognition is also observed in the decay of the generated naphthalene triplets. Perez Prieto, Julia, Julia.Perez@uv.es ; Galian, Raquel Eugenia, Raquel.Galian@uv.es ; Morant Miñana, Maria Carmen, Maica.Morant@uv.es

Chiral recognitionStereochemistryEnergy transferUNESCO::QUÍMICAStereodifferentiationBenzoylthiophenePhotochemistry:QUÍMICA [UNESCO]CatalysisTriplet exciplexeschemistry.chemical_compoundMaterials ChemistryTriplet exciplexes ; Energy transfer ; Photosensitisers ; Benzoylthiophene ; Stereodifferentiation ; Chiral recognition ; NaphthalenePhysics::Chemical PhysicsNaphthaleneUNESCO::QUÍMICA::Química analíticaMetals and AlloysGeneral ChemistrySurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsPhotosensitiserschemistryEnergy transferCeramics and Composites:QUÍMICA::Química analítica [UNESCO]Naphthalene
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Core/Shell Gel Beads with Embedded Halloysite Nanotubes for Controlled Drug Release

2019

The use of nanocomposites based on biopolymers and nanoparticles for controlled drug release is an attractive notion. We used halloysite nanotubes that were promising candidates for the loading and release of active molecules due to their hollow cavity. Gel beads based on chitosan with uniformly dispersed halloysite nanotubes were obtained by a dropping method. Alginate was used to generate a coating layer over the hybrid gel beads. This proposed procedure succeeded in controlling the morphology at the mesoscale and it had a relevant effect on the release profile of the model drug from the nanotube cavity.

ChitosanNanotubeMaterials scienceNanocompositeAlginateNanoparticleHalloysiteDrug releaseSurfaces and Interfacesengineering.materialHalloysiteSurfaces Coatings and FilmsChitosangel beadschemistry.chemical_compoundChemical engineeringchemistryCoatinglcsh:TA1-2040Gel beadMaterials ChemistryengineeringMoleculelcsh:Engineering (General). Civil engineering (General)Layer (electronics)Coatings
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Refinement of a structural model of a pigment-protein complex by accurate optical line shape theory and experiments.

2007

Time-local and time-nonlocal theories are used in combination with optical spectroscopy to characterize the water-soluble chlorophyll binding protein complex (WSCP) from cauliflower. The recombinant cauliflower WSCP complexes reconstituted with either chlorophyll b (Chl b) or Chl a/Chl b mixtures are characterized by absorption spectroscopy at 77 and 298 K and circular dichroism at 298 K. On the basis of the analysis of these spectra and spectra reported for recombinant WSCP reconstituted with Chl a only (Hughes, J. L.; Razeghifard, R.; Logue, M.; Oakley, A.; Wydrzynski, T.; Krausz, E. J. Am. Chem. Soc. U.S.A. 2006, 128, 3649), the "open-sandwich" model proposed for the structure of the pig…

Chlorophyll bChlorophyllModels MolecularCircular dichroismOptics and PhotonicsAbsorption spectroscopyChemistryDimerExcitonChlorophyll ACircular DichroismSpectrum AnalysisStatic ElectricityLight-Harvesting Protein ComplexesBrassicaSpectral lineSurfaces Coatings and Filmschemistry.chemical_compoundCrystallographyKineticsModels ChemicalMaterials ChemistryChlorophyll bindingPhysical and Theoretical ChemistrySpectroscopyThe journal of physical chemistry. B
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Pigment−Pigment and Pigment−Protein Interactions in Recombinant Water-Soluble Chlorophyll Proteins (WSCP) from Cauliflower

2007

Plants contain water-soluble chlorophyll-binding proteins (WSCPs) that function neither as antennas nor as components of light-induced electron transfer of photosynthesis but are likely constituents of regulatory protective pathways in particular under stress conditions. This study presents results on the spectroscopic properties of recombinant WSCP from cauliflower reconstituted with chlorophyll b (Chl b) alone or with mixtures of Chl a and Chl b. Two types of experiments were performed: (a) measurements of stationary absorption spectra at 77 and 298 K and CD spectra at 298 K and (b) monitoring of laser flash-induced transient absorption changes with a resolution of 200 fs in the time doma…

Chlorophyll bCircular dichroismAbsorption spectroscopyCircular DichroismLasersDimerKineticsLight-Harvesting Protein ComplexesBrassicaPigments BiologicalRecombinant ProteinsSurfaces Coatings and FilmsKineticschemistry.chemical_compoundCrystallographyElectron transferchemistryUltrafast laser spectroscopyChlorinMaterials ChemistryLinear Energy TransferSpectrophotometry UltravioletPhysical and Theoretical ChemistryThe Journal of Physical Chemistry B
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Similarity and Specificity of Chlorophyll b Triplet State in Comparison to Chlorophyll a as Revealed by EPR/ENDOR and DFT Calculations

2019

An investigation of the photoexcited triplet state of chlorophyll (Chl) b has been carried out by means of electron nuclear double resonance, both in a frozen organic solvent and in a protein environment provided by the water-soluble chlorophyll protein of Lepidium virginicum. Density functional theory calculations have allowed the complete assignment of the observed hyperfine couplings corresponding to the methine protons and the methyl groups, leading to a complete picture of the spin density distribution of the triplet state in the tetrapyrrole macrocycle. The triplet-state properties of Chl b are found to be similar, in many respects, to those previously reported for Chl a, although som…

Chlorophyll bElectron nuclear double resonance010304 chemical physics010402 general chemistry01 natural sciencesTetrapyrrole0104 chemical sciencesSurfaces Coatings and Filmslaw.inventionchemistry.chemical_compoundCrystallographychemistrylaw0103 physical sciencesMaterials ChemistryDensity functional theoryPhysical and Theoretical ChemistryTriplet stateElectron paramagnetic resonanceHyperfine structureMethyl group
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Rigid versus Flexible Protein Matrix: Light-Harvesting Complex II Exhibits a Temperature-Dependent Phonon Spectral Density

2018

Dynamics-function correlations are usually inferred when molecular mobility and protein function are simultaneously impaired at characteristic temperatures or hydration levels. In this sense, excitation energy transfer in the photosynthetic light-harvesting complex II (LHC II) is an untypical example because it remains fully functional even at cryogenic temperatures relying mainly on interactions of electronic states with protein vibrations. Here, we study the vibrational and conformational protein dynamics of monomeric and trimeric LHC II from spinach using inelastic neutron scattering (INS) in the temperature range of 20-305 K. INS spectra of trimeric LHC II reveal a distinct vibrational …

Chlorophyll0301 basic medicineMaterials sciencePhononLight-Harvesting Protein Complexes010402 general chemistry01 natural sciencesMolecular physicsInelastic neutron scatteringSpectral line03 medical and health sciencesSpinacia oleraceaMaterials ChemistryPhysics::Chemical PhysicsPhysical and Theoretical ChemistrySofteningQuantitative Biology::BiomoleculesProtein dynamicsAnharmonicityTemperaturefood and beveragesAtmospheric temperature rangeProtein Structure Tertiary0104 chemical sciencesSurfaces Coatings and FilmsNeutron Diffraction030104 developmental biologyEnergy TransferExcitationThe Journal of Physical Chemistry B
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Excitonic energy level structure and pigment-protein interactions in the recombinant water-soluble chlorophyll protein. II. Spectral hole-burning exp…

2011

Persistent spectral hole burning at 4.5 K has been used to investigate the excitonic energy level structure and the excited state dynamics of the recombinant class-IIa water-soluble chlorophyll-binding protein (WSCP) from cauliflower. The hole-burned spectra are composed of four main features: (i) a narrow zero-phonon hole (ZPH) at the burn wavelength, (ii) a number of vibrational ZPHs, (iii) a broad low-energy hole at ~665 and ~683 nm for chlorophyll b- and chlorophyll a-WSCP, respectively, and (iv) a second satellite hole at ~658 and ~673 nm for chlorophyll b- and chlorophyll a-WSCP, respectively. The doublet of broad satellite holes is assigned to an excitonically coupled chlorophyll dim…

ChlorophyllChlorophyll aExcitonAnalytical chemistryLight-Harvesting Protein ComplexesElectronsBrassicaVibrationSpectral linechemistry.chemical_compoundMaterials ChemistryPhysical and Theoretical ChemistryPhysics::Biological PhysicsChlorophyll AWaterFluorescenceRecombinant ProteinsSurfaces Coatings and FilmsWavelengthSpectrometry FluorescencechemistryExcited stateChlorophyllSpectral hole burningThermodynamicsAtomic physicsThe journal of physical chemistry. B
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Excitonic Energy Level Structure and Pigment−Protein Interactions in the Recombinant Water-Soluble Chlorophyll Protein. I. Difference Fluorescence Li…

2011

Difference fluorescence line-narrowing spectroscopy at 4.5 K was employed to investigate electron-phonon and electron-vibrational coupling strengths of the lower exciton level of water-soluble chlorophyll-binding protein (WSCP) from cauliflower reconstituted with chlorophyll a or chlorophyll b, respectively. The electron-phonon coupling is found to be moderate with integral Huang-Rhys factors S in the order of 0.81-0.85. A weak dependence of S on excitation wavelength within the inhomogeneously broadened fluorescence origin band is attributed to a sizable contribution of nonresonant excitation that varies with excitation wavelength. The strongly asymmetric and highly structured one-phonon p…

ChlorophyllChlorophyll bChlorophyll aChemistryPhononChlorophyll AExcitonLight-Harvesting Protein ComplexesAnalytical chemistryWaterElectronsBrassicaFluorescenceRecombinant ProteinsSurfaces Coatings and Filmschemistry.chemical_compoundSpectrometry FluorescenceChlorophyllMaterials ChemistryThermodynamicsPhysical and Theoretical ChemistrySpectroscopyExcitationThe Journal of Physical Chemistry B
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Optically Detected Magnetic Resonance of Chlorophyll Triplet States in Water-Soluble Chlorophyll Proteins from Lepidium virginicum: Evidence for Exci…

2018

Optically detected magnetic resonance of triplet states populated by photoexcitation in water-soluble chlorophyll proteins (WSCPs) from Lepidium virginicum has been performed using both absorption and fluorescence detection. Well resolved triplet-singlet (T-S) spectra have been obtained and interpreted in terms of electronic interactions among the four chlorophylls (Chls), forming two dimers in the WSCP tetramer. Localization of the triplet state on a single Chl leads to a redistribution of the oscillator strength in the remaining three Chls of the complex. By comparing the spectra with those obtained on a substoichiometric WSCP complex containing only 2 Chls per protein tetramer, we proved…

ChlorophyllMaterials Chemistry2506 Metals and Alloys0301 basic medicineOscillator strength010402 general chemistryPhotochemistryLepidium01 natural sciencesCoatings and Films03 medical and health scienceschemistry.chemical_compoundTetramerMaterials ChemistryPhysical and Theoretical Chemistry; Surfaces Coatings and Films; Materials Chemistry2506 Metals and AlloysPhysical and Theoretical ChemistryTriplet stateNuclear Magnetic Resonance BiomolecularPlant ProteinsChemistryTemperatureWaterChromophorePorphyrinFluorescenceRecombinant Proteins0104 chemical sciencesSurfaces Coatings and FilmsSurfacesPhotoexcitation030104 developmental biologySolubilityChlorophyllThe Journal of Physical Chemistry B
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Preparation of Pd coated anodic alumina membranes for gas separation media

2007

Different procedures of Pd electroless deposition onto anodic alumina membranes were investigated to form a dense metal layer covering pores. The main difficulty was related to the amorphous nature of anodic alumina membranes, determining low chemical stability in solutions at pH > 9, where Pd plating works more efficiently. As a consequence, it was necessary to find the operative conditions allowing Pd deposition without damaging the membrane: to reduce alumina dissolution, the plating bath was buffered at pH 8.5 by addition of either NaHCO 3 or Na 2 B 4 O 7 ·H 2 O. Acceptable conversion of Pd was found after a deposition time of 3 min. Single and multiple deposition steps (each lasting 3 …

ChromatographyAluminaAmorphous materialsDissolutionPalladiumPlatingRenewable Energy Sustainability and the EnvironmentChemistryCondensed Matter PhysicsSurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsAmorphous solidMembraneSettore ING-IND/23 - Chimica Fisica ApplicataChemical engineeringPlatingMaterials ChemistryElectrochemistryGas separationSolubilityDissolutionDeposition (chemistry)Layer (electronics)
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