Nano-Optics for Enhancing Light-Matter Interactions on a by Anirban Mitra, Lukas Novotny (auth.), Baldassare Di Bartolo,

By Anirban Mitra, Lukas Novotny (auth.), Baldassare Di Bartolo, John Collins (eds.)

This quantity provides quite a lot of interrelated contributions facing the hot clinical skill to form and keep an eye on topic and electromagnetic fields on a sub-wavelength scale.

The subject matters variety from the basic ones, reminiscent of photonic metamateriials, plasmonics and sub-wavelength answer to the extra applicative, equivalent to detection of unmarried molecules, tomography on a micro-chip, fluorescence spectroscopy of organic structures, coherent regulate of biomolecules, biosensing of unmarried proteins, terahertz spectroscopy of nanoparticles, infrequent earth ion-doped nanoparticles, random lasing, and nanocoax array architecture.

The numerous topics bridge over the disciplines of physics, biology and chemistry, making this quantity of curiosity to humans operating in those fields. The emphasis is at the rules at the back of every one approach and on interpreting the total strength of every technique.

The contributions that seem during this quantity have been offered at a NATO complex examine Institute that was once held in Erice, Italy, 3-18 July, 2011. The pedagogical element of the Institute is mirrored within the issues offered during this volume.

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Additional info for Nano-Optics for Enhancing Light-Matter Interactions on a Molecular Scale: Plasmonics, Photonic Materials and Sub-Wavelength Resolution

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Phys Rev Lett 96:013901 44. Mitra A, Deutsch B, Ignatovich F, Dykes C, Novotny L (2010) Nano-optofluidic detection of single viruses and nanoparticles. ACS Nano 4:1305–1312 45. Person S, Deutsch B, Mitra A, Novotny L (2011) Material-specific detection and classification of single nanoparticles. Nano Lett 11:257–261 46. Deutsch B, Beams R, Novotny L (2010) Nanoparticle detection using dual-phase interferometry. Appl Opt 49:4921–4925 47. Ignatovich FV, Topham D, Novotny L (2006) Optical detection of single nanoparticles and viruses.

A characteristic time trace for a single electroosmotically trapped nanoparticle is depicted in Fig. 5a. t/. t/. Therefore, as shown in Fig. 5a, the variations between individual detection events are considerably larger in the homodyne signal than in the heterodyne signal, supporting the hypothesis that the phase should be eliminated for accurate particle characterization. t/ for each particle passage is then evaluated and a distribution of the values is established. The resulting histogram is shown in Fig.

Keshner M (1982) 1/f noise. Proc IEEE 70:212–218 51. Strauss EG (2001) Viruses and human disease, 1st edn. Academic, New York 52. Oster G (1950) Two-phase formation in solutions of tobacco mosaic virus and the problem of long-range forces. J Gen Physiol 33:445–473 53. Tang G et al (2006) Assessment of joule heating and its effects on electroosmotic flow and electrophoretic transport of solutes in microfluidic channels. Electrophoresis 27:628–639 54. Knox JH, McCormack KA (1994) Enhanced dielectric contrast in scattering-type scanning near-field optical microscopy.

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