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Mazur, Eric

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Mazur

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Eric

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Mazur, Eric

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Now showing 1 - 2 of 2
  • Publication

    Can Mixed-Metal Surfaces Provide an Additional Enhancement to SERS?

    (American Chemical Society, 2012) Olivares-Amaya, Roberto; Rappoport, Dmitrij; Camayd-Munoz, Phil; Peng, Paul; Mazur, Eric; Aspuru-Guzik, Alan

    We explore the chemical contribution to surface-enhanced Raman scattering (SERS) in mixed-metal substrates, both experimentally and by computer simulation. These substrates are composed of a chemically active, transition-metal overlayer deposited on an effective SERS substrate. We report improved analytical enhancement factors obtained by using a small surface coverage of palladium or platinum over nanostructured silver substrates. Theoretical predictions of the chemical contribution to the surface enhancement using density functional theory support the experimental results. In addition, these approaches show that the increased enhancement is due not only to an increase in surface coverage of the analyte but also to a higher Raman scattering cross section per molecule. The additional chemical enhancement in mixed-metal SERS substrates correlates with the binding energy of the analyte on the surface and includes both static and dynamical effects. SERS using mixed-metal substrates has the potential to improve sensing for a large group of analyte molecules and to aid the development of chemically specific SERS-based sensors.

  • Publication

    Efficient photon triplet generation in integrated nanophotonic waveguides

    (The Optical Society, 2016) Moebius, Michael; Herrera, Felipe; Griesse-Nascimento, Sarah; Reshef, Orad; Evans, Christopher; Guerreschi, Gian Giacomo; Aspuru-Guzik, Alan; Mazur, Eric

    Generation of entangled photons in nonlinear media constitutes a basic building block of modern photonic quantum technology. Current optical materials are severely limited in their ability to produce three or more entangled photons in a single event due to weak nonlinearities and challenges achieving phase-matching. We use integrated nanophotonics to enhance nonlinear interactions and develop protocols to design multimode waveguides that enable sustained phase-matching for third order spontaneous parametric down-conversion (TOSPDC). We predict a generation efficiency of 0.13 triplets/s/mW of pump power in TiO2- based integrated waveguides, an order of magnitude higher than previous theoretical and experimental demonstrations. We experimentally verify our device design methods in TiO2 waveguides using third-harmonic generation (THG), the reverse process of TOSPDC that is subject to the same phase-matching constraints. We finally discuss the effect of finite detector bandwidth and photon losses on the energy-time coherence properties of the expected TOSPDC source.