Search results for "plasmon"

showing 10 items of 614 documents

Chemical Interface Damping Depends on Electrons Reaching the Surface.

2017

Metallic nanoparticles show extraordinary strong light absorption near their plasmon resonance, orders of magnitude larger compared to nonmetallic nanoparticles. This "antenna" effect has recently been exploited to transfer electrons into empty states of an attached material, for example to create electric currents in photovoltaic devices or to induce chemical reactions. It is generally assumed that plasmons decay into hot electrons, which then transfer to the attached material. Ultrafast electron-electron scattering reduces the lifetime of hot electrons drastically in metals and therefore strongly limits the efficiency of plasmon induced hot electron transfer. However, recent work has revi…

Work (thermodynamics)ChemistryOrders of magnitude (temperature)ScatteringSurface plasmonGeneral EngineeringPhysics::OpticsGeneral Physics and Astronomy02 engineering and technologyElectron010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesGeneral Materials ScienceSurface plasmon resonanceElectric currentAtomic physics0210 nano-technologyPlasmonACS nano
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Increasing Nanoparticles’ Refractive Index Sensitivity

2012

Since the plasmon resonance of nanoparticles depends on the refractive index of the immediate environment, these particles form the basis of many sensing schemes . The sensitivity of plasmon sensors for the detection of changes in the environment varies greatly and depends on the particle material and its morphology (size and shape). To further increase this sensitivity by chemical modifications was another goal of my work.

Work (thermodynamics)Materials sciencebusiness.industryPhysics::OpticsOptoelectronicsNanoparticleNanorodSensitivity (control systems)Refractive index profileSurface plasmon resonancebusinessRefractive indexPlasmon
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Synthesis of Yb nanoparticles by laser ablation of ytterbium target in sodium bis(2-ethylhexyl)sulfosuccinate reverse micellar solution

2010

Abstract Surfactant-coated ytterbium nanoparticles were produced by Nd:YAG laser ablation of a Yb bulk target immersed in sodium bis(2-ethylhexyl)sulfosuccinate (AOT)/ n -heptane micellar solution. In our experimental conditions, as highlighted by IR spectroscopy, AOT molecules are not decomposed by the intense laser pulses but play a pivotal role in the stabilisation of Yb nanoparticles. The formation of Yb nanoparticles in the liquid phase was monitored by UV–Vis spectroscopy whereas the Yb/AOT composites obtained by evaporation of the organic solvent were characterised by XPS and TEM. Data analysis consistently shows the presence of surfactant-coated, nearly spherical and non-interacting…

YtterbiumRaman spectroscopy Plasmons corrosion inhibitionLaser ablationMaterials scienceMechanical EngineeringAnalytical chemistryInfrared spectroscopyNanoparticlechemistry.chemical_elementCondensed Matter PhysicsLaser ablation synthesis in solutionLaser ablationNanomaterialsAdsorptionNanomaterials Laser ablation Reverse micelles Surfactant YtterbiumchemistryX-ray photoelectron spectroscopyMechanics of MaterialsSurfactantGeneral Materials ScienceYtterbiumNanomaterialsReverse micelles
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Analyse locale des sensibilités des lectures angulaires, spectroscopiques et ellipsométriques de la Résonance des Plasmons de Surface en vue de la mi…

2006

The fluorescence labelling, used by the fluorescence biochips, is known to change the charge distribution of the labelled molecules and then modify their biological activity. Among label free biosensors, we choose an optical detection, such as spectroscopic ellipsometry and/or surface plasmon resonance (SPR) of the biolayers.These optical techniques are based on the measurement of both thickness and optical index of the adsorbed biolayer. An AFM statistical measurement of the thickness of functionalized lithographed microstructures has been performed in order to determine the thickness of the biolayers.We have shown that the spectroscopic reading of the SPR phase shift is 100 times more sen…

[PHYS.PHYS.PHYS-BIO-PH] Physics [physics]/Physics [physics]/Biological Physics [physics.bio-ph]Microscopie optique.[ PHYS.PHYS.PHYS-BIO-PH ] Physics [physics]/Physics [physics]/Biological Physics [physics.bio-ph]Résonance des Plasmons de SurfaceMicroscopie optiqueBiocapteursEllipsométrie spectroscopiqueAFM
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ELECTRON-FED OPTICAL ANTENNA

2019

Nanoscale electronics and photonics are among the most promising research areas providing functional nanocomponents for data transfer and signal processing. By adopting metal-based optical antennas as a disruptive technological vehicle, we demonstrate that an optical antenna coupled to a tunnel junction can be interfaced to create an electronically driven self-emitting unit. This nanoscale plasmonic transmitter operates by injecting electrons in a contacted tunneling antenna feedgap. Under certain operating conditions, we show that the device radiates a broadband light spectrum which can be related to a thermal like spectrum. We propose a model based upon the spontaneous emission of hot ele…

[PHYS.PHYS.PHYS-OPTICS] Physics [physics]/Physics [physics]/Optics [physics.optics]Antenne[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics]PlasmoniqueNano-OptiqueJonction tunnelAntennaTunnel junctionPlasmonicsNano-Optics
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SNOM signal near plasmonic nanostructures: an analogy with fluorescence decays channels

2008

International audience; Scanning Near-field Optical Microscope (SNOM) is based on local excitations of nanostructures deposited on a substrate (illumination mode). Ideally, the local source behaves like a dipolar emitter so that the SNOM signal is strongly similar to the fluorescence decay rates of an excited molecule that would be located at the SNOM tip position. We present here how the SNOM signal near plasmonic nanostructures can be used to analyze radiative and non-radiative contribution to the fluorescence decay rate.

[PHYS.PHYS.PHYS-OPTICS] Physics [physics]/Physics [physics]/Optics [physics.optics]HistologyMaterials science[SPI.OPTI] Engineering Sciences [physics]/Optics / Photonic[SPI.NANO] Engineering Sciences [physics]/Micro and nanotechnologies/MicroelectronicsPhysics::Optics02 engineering and technologySubstrate (electronics)01 natural sciencesSignalPathology and Forensic Medicinelaw.inventionGOLD NANORODSplasmonOpticsOptical microscopelaw0103 physical sciencesRadiative transferMODE[SPI.NANO]Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics010306 general physicsPlasmon[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics][ PHYS.PHYS.PHYS-OPTICS ] Physics [physics]/Physics [physics]/Optics [physics.optics]business.industryGreen's dyadic021001 nanoscience & nanotechnologyFluorescenceSantennaDENSITY[SPI.OPTI]Engineering Sciences [physics]/Optics / Photonic[ SPI.NANO ] Engineering Sciences [physics]/Micro and nanotechnologies/MicroelectronicsNear-field scanning optical microscopeNanorod[ SPI.OPTI ] Engineering Sciences [physics]/Optics / Photonicfluorescence decay rateSNOM0210 nano-technologybusiness
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Far-field imaging of the electromagnetic local density of optical states.

2008

International audience; We introduce a new experimental method to measure the local electromagnetic density of states (LDOS) by integrating the differential scattering cross section. The signal detected essentially reflects the intrinsic scattering response of the photonic structures and renders the partial LDOS dominated by evanescent modes. We give a theoretical understanding of the LDOS image formation and show a qualitative agreement between experimental images and theoretical maps. This approach can be practically applied to the direct measurement of an optical antenna's scattering efficiency and can provide valuable information for designing optimum structures utilized in radiative de…

[PHYS.PHYS.PHYS-OPTICS] Physics [physics]/Physics [physics]/Optics [physics.optics]Image formationDYNAMICS[SPI.OPTI] Engineering Sciences [physics]/Optics / Photonic[SPI.NANO] Engineering Sciences [physics]/Micro and nanotechnologies/MicroelectronicsPhysics::OpticsNear and far field02 engineering and technology01 natural sciencesSignal010309 opticsOptics[ PHYS.COND.CM-MSQHE ] Physics [physics]/Condensed Matter [cond-mat]/Mesoscopic Systems and Quantum Hall Effect [cond-mat.mes-hall]0103 physical sciences[SPI.NANO]Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics[PHYS.COND.CM-MSQHE]Physics [physics]/Condensed Matter [cond-mat]/Mesoscopic Systems and Quantum Hall Effect [cond-mat.mes-hall]Photonic crystalPhysics[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics][ PHYS.PHYS.PHYS-OPTICS ] Physics [physics]/Physics [physics]/Optics [physics.optics]SPECTROSCOPYbusiness.industryScatteringSURFACE-PLASMONSPONTANEOUS EMISSIONMICROSCOPY021001 nanoscience & nanotechnologyAtomic and Molecular Physics and Optics[PHYS.COND.CM-MSQHE] Physics [physics]/Condensed Matter [cond-mat]/Mesoscopic Systems and Quantum Hall Effect [cond-mat.mes-hall]Density of states[SPI.OPTI]Engineering Sciences [physics]/Optics / PhotonicNear-field scanning optical microscope[ SPI.NANO ] Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics[ SPI.OPTI ] Engineering Sciences [physics]/Optics / PhotonicPhotonics0210 nano-technologybusinessOptics letters
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Surface plasmon polaritons on metal cylinders with dielectric core

2001

International audience; Metal-cladded dielectric cylinders with submicron diameters may serve to model coated tips used in nearfield scanning optical microscopy. The signal measured may be greatly influenced by resonance effects due to eigenmodes of the probe. Especially, using a photon scanning tunneling microscope setup, gold-coated tips have been found to detect a signal proportional to the magnetic field distributions [E. Devaux et al.. Phys. Rev. B 62, 10 504 (2000)]. This effect is attributed to cylindrical surface plasmons. We present here fully retarded calculations of the dispersion and field patterns of the nonradiative plasmon modes in cylindrical geometry. We study the effect of…

[PHYS.PHYS.PHYS-OPTICS] Physics [physics]/Physics [physics]/Optics [physics.optics]Materials scienceNanophotonicsPhysics::Optics02 engineering and technologyDielectric01 natural sciencesMolecular physicsOptics[ PHYS.COND.CM-MSQHE ] Physics [physics]/Condensed Matter [cond-mat]/Mesoscopic Systems and Quantum Hall Effect [cond-mat.mes-hall]0103 physical sciencesCylinderSurface plasmon resonance010306 general physics[PHYS.COND.CM-MSQHE]Physics [physics]/Condensed Matter [cond-mat]/Mesoscopic Systems and Quantum Hall Effect [cond-mat.mes-hall]Plasmon[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics][ PHYS.PHYS.PHYS-OPTICS ] Physics [physics]/Physics [physics]/Optics [physics.optics]business.industrySurface plasmonMAGNETIC-FIELD021001 nanoscience & nanotechnologySurface plasmon polariton[PHYS.COND.CM-MSQHE] Physics [physics]/Condensed Matter [cond-mat]/Mesoscopic Systems and Quantum Hall Effect [cond-mat.mes-hall]FIELD OPTICAL MICROSCOPY0210 nano-technologybusinessLocalized surface plasmonPhysical Review B
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Analysis of the angular acceptance of surface plasmon Bragg mirrors

2007

International audience; We analyze an important aspect of the behavior of surface plasmon polariton (SPP) Bragg mirrors: the dependence of the angular acceptance for reflection on the incidence angle. By means of leakage radiation microscopy, both in direct and Fourier space, we observe that the angular acceptance diminishes for increasing incidence angles. This effect, which can considerably affect the design of devices based on these elements, is shown to be the consequence of the decrease of the bandgap width with increasing incidence angle. (c) 2007 Optical Society of America.

[PHYS.PHYS.PHYS-OPTICS] Physics [physics]/Physics [physics]/Optics [physics.optics]Materials science[SPI.OPTI] Engineering Sciences [physics]/Optics / PhotonicLightBand gap[SPI.NANO] Engineering Sciences [physics]/Micro and nanotechnologies/MicroelectronicsPhysics::Optics02 engineering and technology01 natural scienceslaw.invention010309 opticsOpticslaw0103 physical sciencesMicroscopyImage Interpretation Computer-AssistedScattering Radiation[SPI.NANO]Engineering Sciences [physics]/Micro and nanotechnologies/MicroelectronicsLenses[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics][ PHYS.PHYS.PHYS-OPTICS ] Physics [physics]/Physics [physics]/Optics [physics.optics]business.industrySurface plasmonBragg's lawEquipment DesignSurface Plasmon Resonance021001 nanoscience & nanotechnologySurface plasmon polaritonAtomic and Molecular Physics and OpticsEquipment Failure AnalysisRefractometryReflection (physics)[SPI.OPTI]Engineering Sciences [physics]/Optics / PhotonicOptoelectronicsComputer-Aided Design[ SPI.NANO ] Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics[ SPI.OPTI ] Engineering Sciences [physics]/Optics / Photonic0210 nano-technologybusinessBeam splitterElectron-beam lithography
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Dielectric-loaded plasmonic waveguide-ring resonators

2009

International audience; Using near-field microscopy, the performance of dielectric-loaded plasmonic waveguide-ring resonators (WRRs) operating at telecom wavelengths is investigated for various waveguide-ring separations. It is demonstrated that compact ( footprint similar to 150 mu m(2)) and efficient ( extinction ratio similar to 13 dB) WRR-based filters can be realized using UV-lithography. The WRR wavelength responses measured and calculated using the effective-index method are found in good agreement. (c) 2009 Optical Society of America

[PHYS.PHYS.PHYS-OPTICS] Physics [physics]/Physics [physics]/Optics [physics.optics]Materials science[SPI.OPTI] Engineering Sciences [physics]/Optics / PhotonicPolymers[SPI.NANO] Engineering Sciences [physics]/Micro and nanotechnologies/MicroelectronicsTransducersPhysics::Optics02 engineering and technologyDielectricSensitivity and Specificity01 natural sciences010309 opticsResonatorOptics0103 physical sciencesPOLARITON WAVES[SPI.NANO]Engineering Sciences [physics]/Micro and nanotechnologies/MicroelectronicsTotal internal reflection[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics][ PHYS.PHYS.PHYS-OPTICS ] Physics [physics]/Physics [physics]/Optics [physics.optics]Extinction ratiobusiness.industryPhotonic integrated circuitSurface plasmonCOMPONENTSOptical DevicesReproducibility of ResultsEquipment DesignSurface Plasmon Resonance021001 nanoscience & nanotechnologyWAVELENGTHSAtomic and Molecular Physics and OpticsEquipment Failure AnalysisWavelength[SPI.OPTI]Engineering Sciences [physics]/Optics / PhotonicComputer-Aided DesignOptoelectronics[ SPI.NANO ] Engineering Sciences [physics]/Micro and nanotechnologies/MicroelectronicsNear-field scanning optical microscope[ SPI.OPTI ] Engineering Sciences [physics]/Optics / Photonic0210 nano-technologybusiness
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