New PDF release: Understanding and Modeling Förster-type Resonance Energy

By Hilmi Volkan Demir, Pedro Ludwig Hernández Martínez, Alexander Govorov

ISBN-10: 981101874X

ISBN-13: 9789811018749

ISBN-10: 9811018766

ISBN-13: 9789811018763

This short will specialise in the sensible makes use of and functions of be troubled, beginning with the derivation of be anxious within the assemblies of nanostructures and therefore giving program instances for biologists, physicists, chemists, fabric scientists, engineers, and people in lots of different fields whoever wish to agonize as a device. The objective of this half is consequently to teach either expert and non-specialist easy methods to use and learn be anxious in a variety of applications.

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Extra info for Understanding and Modeling Förster-type Resonance Energy Transfer (FRET): FRET-Applications, Vol. 3

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Artemyev, E. Ustinovich, I. Nabiev, Efficiency of energy transfer from organic dye molecules to CdSe-ZnS nanocrystals: nanorods versus nanodots. J. Am. Chem. Soc. 131, 8061–8065 (2009) 121. E. Mutlugun, S. V. Demir, Highly efficient nonradiative energy transfer using charged CdSe/ZnS nanocrystals for light-harvesting in solution. Appl. Phys. Lett. 95, 033106 (2009) 122. S. Sarkar, R. Bose, S. R. Jana, N. Pradhan, Doped semiconductor nanocrystals and organic dyes: an efficient and greener FRET systems.

Nurmikko, Red, green and blue lasing enabled by single-exciton gain in colloidal quantum dot films. Nat. Nanotechnol. 7, 335–339 (2012) 84. K. Saikin, A. Eisfeld, S. Valleau, A. Aspuru-Guzik, Photonics meets excitonics: natural and artificial molecular aggregates. Nanophotonics 2, 21–38 (2013) 85. N. Tessler, V. Medvedev, M. H. Kan, U. Banin, Efficient near-infrared polymer nanocrystal light-emitting diodes. Science 295, 1056–1058 (2002) 86. M. Anni, L. Manna, R. Cingolani, D. Valerini, A. Creti, M.

Kono, Optoelectronic properties of single-walled carbon nanotubes. Adv. Mater. 24, 4977–4994 (2012) 147. D. Spataru, S. X. G. Louie, Excitonic effects and optical spectra of single-walled carbon nanotubes. Phys. Rev. Lett. 92, 077402 (2004) 148. V. Perebeinos, J. Tersoff, P. Avouris, Scaling of excitons in carbon nanotubes. Phys. Rev. Lett. 92, 257402 (2004) 149. F. Wang, G. E. F. Heinz, The optical resonances in carbon nanotubes arise from excitons. Science 308, 838–843 (2005) 150. V. M. Woods, K.

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Understanding and Modeling Förster-type Resonance Energy Transfer (FRET): FRET-Applications, Vol. 3 by Hilmi Volkan Demir, Pedro Ludwig Hernández Martínez, Alexander Govorov

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