Surface-enhanced Raman Scattering from Individual Au Nanoparticles and Nanoparticle Dimer Substrates

Talley CE, Jackson JB, Oubre C, Grady NK, Hollars CW, Lane SM, Huser T, Nordlander P, Halas NJ (2005)
Nano Letters 5(8): 1569-1574.

Zeitschriftenaufsatz | Veröffentlicht | Englisch
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Talley, C.E.; Jackson, J.B.; Oubre, C.; Grady, N.K.; Hollars, C.W.; Lane, S.M.; Huser, ThomasUniBi ; Nordlander, P.; Halas, N.J.
Nano Letters
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Talley CE, Jackson JB, Oubre C, et al. Surface-enhanced Raman Scattering from Individual Au Nanoparticles and Nanoparticle Dimer Substrates. Nano Letters. 2005;5(8):1569-1574.
Talley, C. E., Jackson, J. B., Oubre, C., Grady, N. K., Hollars, C. W., Lane, S. M., Huser, T., et al. (2005). Surface-enhanced Raman Scattering from Individual Au Nanoparticles and Nanoparticle Dimer Substrates. Nano Letters, 5(8), 1569-1574.
Talley, C.E., Jackson, J.B., Oubre, C., Grady, N.K., Hollars, C.W., Lane, S.M., Huser, Thomas, Nordlander, P., and Halas, N.J. 2005. “Surface-enhanced Raman Scattering from Individual Au Nanoparticles and Nanoparticle Dimer Substrates”. Nano Letters 5 (8): 1569-1574.
Talley, C. E., Jackson, J. B., Oubre, C., Grady, N. K., Hollars, C. W., Lane, S. M., Huser, T., Nordlander, P., and Halas, N. J. (2005). Surface-enhanced Raman Scattering from Individual Au Nanoparticles and Nanoparticle Dimer Substrates. Nano Letters 5, 1569-1574.
Talley, C.E., et al., 2005. Surface-enhanced Raman Scattering from Individual Au Nanoparticles and Nanoparticle Dimer Substrates. Nano Letters, 5(8), p 1569-1574.
C.E. Talley, et al., “Surface-enhanced Raman Scattering from Individual Au Nanoparticles and Nanoparticle Dimer Substrates”, Nano Letters, vol. 5, 2005, pp. 1569-1574.
Talley, C.E., Jackson, J.B., Oubre, C., Grady, N.K., Hollars, C.W., Lane, S.M., Huser, T., Nordlander, P., Halas, N.J.: Surface-enhanced Raman Scattering from Individual Au Nanoparticles and Nanoparticle Dimer Substrates. Nano Letters. 5, 1569-1574 (2005).
Talley, C.E., Jackson, J.B., Oubre, C., Grady, N.K., Hollars, C.W., Lane, S.M., Huser, Thomas, Nordlander, P., and Halas, N.J. “Surface-enhanced Raman Scattering from Individual Au Nanoparticles and Nanoparticle Dimer Substrates”. Nano Letters 5.8 (2005): 1569-1574.

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Tan Y, Zang X, Gu J, Liu D, Zhu S, Su H, Feng C, Liu Q, Lau WM, Moon WJ, Zhang D., Langmuir 27(19), 2011
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Plasmon-enhanced depolarization of reflected light from arrays of nanoparticle dimers.
Walsh GF, Forestiere C, Dal Negro L., Opt Express 19(21), 2011
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Guided growth of Ag nanoparticles on SrTiO3 (110) surface.
Zhang Z, Feng J, Wang Z, Yang F, Guo Q, Guo J., J Chem Phys 135(14), 2011
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3D self-assembled plasmonic superstructures of gold nanospheres: synthesis and characterization at the single-particle level.
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Large-area plasmonic hot-spot arrays: sub-2 nm interparticle separations with plasma-enhanced atomic layer deposition of Ag on periodic arrays of Si nanopillars.
Caldwell JD, Glembocki OJ, Bezares FJ, Kariniemi MI, Niinistö JT, Hatanpää TT, Rendell RW, Ukaegbu M, Ritala MK, Prokes SM, Hosten CM, Leskelä MA, Kasica R., Opt Express 19(27), 2011
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Au nanowire-Au nanoparticles conjugated system which provides micrometer size molecular sensors.
Kang T, Yoon I, Kim J, Ihee H, Kim B., Chemistry 16(4), 2010
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Measuring the SERS Enhancement Factors of Dimers with Different Structures Constructed from Silver Nanocubes.
Camargo PH, Au L, Rycenga M, Li W, Xia Y., Chem Phys Lett 484(4-6), 2010
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Understanding the SERS Effects of Single Silver Nanoparticles and Their Dimers, One at a Time.
Rycenga M, Camargo PH, Li W, Moran CH, Xia Y., J Phys Chem Lett 1(4), 2010
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Gold nanorings as substrates for surface-enhanced Raman scattering.
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Nanoparticle clusters light up in SERS.
Jin R., Angew Chem Int Ed Engl 49(16), 2010
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Surface-enhanced Raman scattering biomedical applications of plasmonic colloidal particles.
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Micro-/nano-patterning of DNA and rapid readout with SERS tags.
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Gold nanoring trimers: a versatile structure for infrared sensing.
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Dynamic Imaging Analysis of SERS-Active Nanoparticle Clusters in Suspension.
Wark AW, Stokes RJ, Darby SB, Smith WE, Graham D., J Phys Chem C Nanomater Interfaces 114(42), 2010
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Construction of a ferritin dimer by breaking its symmetry.
Zheng B, Uenuma M, Uraoka Y, Yamashita I., Nanotechnology 21(44), 2010
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Single-step bifunctional coating for selectively conjugable nanoparticles.
Voliani V, Luin S, Ricci F, Beltram F., Nanoscale 2(12), 2010
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Isolating and probing the hot spot formed between two silver nanocubes.
Camargo PH, Rycenga M, Au L, Xia Y., Angew Chem Int Ed Engl 48(12), 2009
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Deterministic aperiodic arrays of metal nanoparticles for surface-enhanced Raman scattering (SERS).
Gopinath A, Boriskina SV, Reinhard BM, Dal Negro L., Opt Express 17(5), 2009
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Protein separation and identification using magnetic beads encoded with surface-enhanced Raman spectroscopy.
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Poly(ethylene glycol)-stabilized silver nanoparticles for bioanalytical applications of SERS spectroscopy.
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Nanoshell-based substrates for surface enhanced spectroscopic detection of biomolecules.
Levin CS, Kundu J, Barhoumi A, Halas NJ., Analyst 134(9), 2009
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Purcell effect of nanoshell dimer on single molecule's fluorescence.
Liaw JW, Chen JH, Chen CS, Kuo MK., Opt Express 17(16), 2009
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Highly sensitive immunoassay based on Raman reporter-labeled immuno-Au aggregates and SERS-active immune substrate.
Song C, Wang Z, Zhang R, Yang J, Tan X, Cui Y., Biosens Bioelectron 25(4), 2009
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The forces from coupled surface plasmon polaritons in planar waveguides.
Woolf D, Loncar M, Capasso F., Opt Express 17(22), 2009
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Surface plasmon resonance and field enhancement in #-shaped gold wires metamaterial.
Hu WQ, Liang EJ, Ding P, Cai GW, Xue QZ., Opt Express 17(24), 2009
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Rationally designed nanostructures for surface-enhanced Raman spectroscopy.
Banholzer MJ, Millstone JE, Qin L, Mirkin CA., Chem Soc Rev 37(5), 2008
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Tailoring plasmonic substrates for surface enhanced spectroscopies.
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Gold and magnetic oxide/gold core/shell nanoparticles as bio-functional nanoprobes.
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Optically controlled interparticle distance tuning and welding of single gold nanoparticle pairs by photochemical metal deposition.
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Individual nanometer hole-particle pairs for surface-enhanced Raman scattering.
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Correlated Optical Spectroscopy and Transmission Electron Microscopy of Individual Hollow Nanoparticles and their Dimers.
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Fano profiles induced by near-field coupling in heterogeneous dimers of gold and silver nanoparticles.
Bachelier G, Russier-Antoine I, Benichou E, Jonin C, Del Fatti N, Vallée F, Brevet PF., Phys Rev Lett 101(19), 2008
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Plasmonic nanoshell arrays combine surface-enhanced vibrational spectroscopies on a single substrate.
Wang H, Kundu J, Halas NJ., Angew Chem Int Ed Engl 46(47), 2007
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Characterization of cap-shaped silver particles for surface-enhanced fluorescence effects.
Yamaguchi T, Kaya T, Takei H., Anal Biochem 364(2), 2007
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Plasmon modes of curvilinear metallic core/shell particles.
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Particle plasmons of metal nanospheres: application of multiple scattering approach.
Chern RL, Liu XX, Chang CC., Phys Rev E Stat Nonlin Soft Matter Phys 76(1 pt 2), 2007
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Polarization-dependent effects in surface-enhanced Raman scattering (SERS).
Etchegoin PG, Galloway C, Le Ru EC., Phys Chem Chem Phys 8(22), 2006
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Designing, fabricating, and imaging Raman hot spots.
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Plasmon hybridization in nanoshells with a nonconcentric core.
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