Year |
Citation |
Score |
2006 |
Chen W, Zhang J, Westcott SL, Joly AG, Malm JO, Bovin JO. The origin of x-ray luminescence from CdTe nanoparticles in CdTe/BaFBr:Eu 2+ nanocomposite phosphors Journal of Applied Physics. 99. DOI: 10.1063/1.2168234 |
0.327 |
|
2005 |
Zhang J, Su F, Chen W, Sammynaiken R, Westcott SL, McCready DE, Li G, Joly AG. Synthesis and luminescence of ZnMgS:Mn2+ nanoparticles. Journal of Nanoscience and Nanotechnology. 5: 1465-71. PMID 16193959 DOI: 10.1166/jnn.2005.313 |
0.376 |
|
2003 |
Jackson JB, Westcott SL, Hirsch LR, West JL, Halas NJ. Controlling the surface enhanced Raman effect via the nanoshell geometry Applied Physics Letters. 82: 257-259. DOI: 10.1063/1.1534916 |
0.781 |
|
2002 |
Westcott SL, Jackson JB, Radloff C, Halas NJ. Relative contributions to the plasmon line shape of metal nanoshells Physical Review B. 66. DOI: 10.1103/Physrevb.66.155431 |
0.783 |
|
2002 |
Sershen SR, Westcott SL, Halas NJ, West JL. Independent optically addressable nanoparticle-polymer optomechanical composites Applied Physics Letters. 80: 4609-4611. DOI: 10.1063/1.1481536 |
0.671 |
|
2002 |
Wang S, Westcott S, Chen W. Nanoparticle luminescence thermometry Journal of Physical Chemistry B. 106: 11203-11209. DOI: 10.1021/jp026445m |
0.482 |
|
2002 |
Lal S, Westcott SL, Taylor RN, Jackson JB, Nordlander P, Halas NJ. Light interaction between gold nanoshells plasmon resonance and planar optical waveguides Journal of Physical Chemistry B. 106: 5609-5612. DOI: 10.1021/Jp014154S |
0.748 |
|
2002 |
Westcott SL, Halas NJ. Electron relaxation dynamics in semicontinuous metal films on nanoparticle surfaces Chemical Physics Letters. 356: 207-213. DOI: 10.1016/S0009-2614(02)00240-3 |
0.628 |
|
2001 |
Westcott SL, Wolfgang JA, Nordlander PJ, Halas NJ, Averitt RD. Effect of adsorbed molecules on hot electron relaxation in gold nanoshells Technical Digest - Summaries of Papers Presented At the Quantum Electronics and Laser Science Conference, Qels 2001. 210-211. DOI: 10.1109/QELS.2001.962080 |
0.515 |
|
2001 |
Lal S, Taylor RN, Westcott SL, Radloff C, Jackson JB, Halas NJ. Plasmon-plasmon interaction between gold nanoshells and gold surfaces Technical Digest - Summaries of Papers Presented At the Quantum Electronics and Laser Science Conference, Qels 2001. 49-50. DOI: 10.1109/QELS.2001.961836 |
0.764 |
|
2001 |
Westcott SL, Averitt RD, Wolfgang JA, Nordlander P, Halas NJ. Adsorbate-induced quenching of hot electrons in gold core-shell nanoparticles Journal of Physical Chemistry B. 105: 9913-9917. DOI: 10.1021/Jp011213T |
0.708 |
|
2001 |
Sershen SR, Westcott SL, West JL, Halas NJ. An opto-mechanical nanoshell-polymer composite Applied Physics B: Lasers and Optics. 73: 379-381. DOI: 10.1007/S003400100689 |
0.556 |
|
2000 |
Sershen SR, Westcott SL, Halas NJ, West JL. Temperature-sensitive polymer-nanoshell composites for photothermally modulated drug delivery. Journal of Biomedical Materials Research. 51: 293-8. PMID 10880069 DOI: 10.1002/1097-4636(20000905)51:3<293::Aid-Jbm1>3.0.Co;2-T |
0.506 |
|
1999 |
Averitt RD, Westcott SL, Halas NJ. Linear optical properties of gold nanoshells Journal of the Optical Society of America B. 16: 1824. DOI: 10.1364/Josab.16.001824 |
0.753 |
|
1999 |
Averitt RD, Westcott SL, Halas NJ. Ultrafast optical properties of gold nanoshells Journal of the Optical Society of America B. 16: 1814. DOI: 10.1364/Josab.16.001814 |
0.7 |
|
1999 |
Oldenburg SJ, Westcott SL, Averitt RD, Halas NJ. Surface enhanced Raman scattering in the near infrared using metal nanoshell substrates The Journal of Chemical Physics. 111: 4729-4735. DOI: 10.1063/1.479235 |
0.809 |
|
1999 |
Oldenburg SJ, Jackson JB, Westcott SL, Halas NJ. Infrared extinction properties of gold nanoshells Applied Physics Letters. 75: 2897-2899. DOI: 10.1063/1.125183 |
0.825 |
|
1999 |
Wolfe DB, Oldenburg SJ, Westcott SL, Jackson JB, Paley MS, Halas NJ. Photodeposition of molecular layers on nanoparticle substrates Langmuir. 15: 2745-2748. DOI: 10.1021/La981593I |
0.803 |
|
1999 |
Westcott SL, Oldenburg SJ, Lee T, Halas NJ. Construction of simple gold nanoparticle aggregates with controlled plasmon–plasmon interactions Chemical Physics Letters. 300: 651-655. DOI: 10.1016/S0009-2614(98)01410-9 |
0.799 |
|
1999 |
Oldenburg SJ, Jackson JB, Westcott SL, Halas NJ. Infrared extinction properties of gold nanoshells Applied Physics Letters. 75: 2897-2899. |
0.711 |
|
1999 |
Oldenburg SJ, Westcott SL, Averitt RD, Halas NJ. Surface enhanced Raman scattering in the near infrared using metal nanoshell substrates Journal of Chemical Physics. 111: 4729-4735. |
0.722 |
|
1999 |
Averitt RD, Westcott SL, Halas NJ. Ultrafast optical properties of gold nanoshells Journal of the Optical Society of America B: Optical Physics. 16: 1814-1823. |
0.55 |
|
1999 |
Averitt RD, Westcott SL, Halas NJ. Linear optical properties of gold nanoshells Journal of the Optical Society of America B: Optical Physics. 16: 1824-1832. |
0.53 |
|
1999 |
Westcott SL, Oldenburg SJ, Lee TR, Halas NJ. Construction of simple gold nanoparticle aggregates with controlled plasmon-plasmon interactions Chemical Physics Letters. 300: 651-655. |
0.76 |
|
1999 |
Wolfe DB, Oldenburg SJ, Westcott SL, Jackson JB, Paley MS, Halas NJ. Preparation and characterization of polymer coated nanoparticles Proceedings of Spie - the International Society For Optical Engineering. 3793: 129-137. |
0.75 |
|
1999 |
Westcott SL, Averitt RD, Halas NJ. Optical properties and ultrafast electron dynamics in gold nanoshells Iqec, International Quantum Electronics Conference Proceedings. 122-123. |
0.549 |
|
1998 |
Porter LA, Ji D, Westcott SL, Graupe M, Czernuszewicz RS, Halas NJ, Lee TR. Gold and Silver Nanoparticles Functionalized by the Adsorption of Dialkyl Disulfides. Langmuir : the Acs Journal of Surfaces and Colloids. 14: 7378-7386. PMID 31416111 DOI: 10.1021/La980870I |
0.683 |
|
1998 |
Averitt RD, Westcott SL, Halas NJ. Ultrafast electron dynamics in gold nanoshells Physical Review B. 58: R10203-R10206. DOI: 10.1103/Physrevb.58.R10203 |
0.645 |
|
1998 |
Westcott SL, Oldenburg SJ, Lee TR, Halas NJ. Formation and Adsorption of Clusters of Gold Nanoparticles onto Functionalized Silica Nanoparticle Surfaces Langmuir. 14: 5396-5401. DOI: 10.1021/La980380Q |
0.793 |
|
1998 |
Oldenburg S, Averitt R, Westcott S, Halas N. Nanoengineering of optical resonances Chemical Physics Letters. 288: 243-247. DOI: 10.1016/S0009-2614(98)00277-2 |
0.818 |
|
1998 |
Oldenburg SJ, Averitt RD, Westcott SL, Halas NJ. Nanoengineering of optical resonances Chemical Physics Letters. 288: 243-247. |
0.695 |
|
1998 |
Westcott SL, Oldenburg SJ, Lee TR, Halas NJ. Formation and adsorption of clusters of gold nanoparticles onto functionalized silica nanoparticle surfaces Langmuir. 14: 5396-5401. |
0.742 |
|
1998 |
Averitt RD, Westcott SL, Halas NJ. Ultrafast electron dynamics in gold nanoshells Physical Review B - Condensed Matter and Materials Physics. 58: R10203-R10206. |
0.522 |
|
1998 |
Porter LA, Ji D, Westcott SL, Graupe M, Czernuszewicz RS, Halas NJ, Lee TR. Gold and silver nanoparticles functionalized by the adsorption of dialkyl disulfides Langmuir. 14: 7378-7386. |
0.447 |
|
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