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@article{JSFU_2014_7_2_a7, author = {Sergey P. Moshchenko and Anna A. Lyamkina}, title = {Modelling the localized surface plasmon resonance of nanoclusters of {group~III} metals and semimetallic antimony}, journal = {\v{Z}urnal Sibirskogo federalʹnogo universiteta. Matematika i fizika}, pages = {211--217}, publisher = {mathdoc}, volume = {7}, number = {2}, year = {2014}, language = {en}, url = {http://geodesic.mathdoc.fr/item/JSFU_2014_7_2_a7/} }
TY - JOUR AU - Sergey P. Moshchenko AU - Anna A. Lyamkina TI - Modelling the localized surface plasmon resonance of nanoclusters of group~III metals and semimetallic antimony JO - Žurnal Sibirskogo federalʹnogo universiteta. Matematika i fizika PY - 2014 SP - 211 EP - 217 VL - 7 IS - 2 PB - mathdoc UR - http://geodesic.mathdoc.fr/item/JSFU_2014_7_2_a7/ LA - en ID - JSFU_2014_7_2_a7 ER -
%0 Journal Article %A Sergey P. Moshchenko %A Anna A. Lyamkina %T Modelling the localized surface plasmon resonance of nanoclusters of group~III metals and semimetallic antimony %J Žurnal Sibirskogo federalʹnogo universiteta. Matematika i fizika %D 2014 %P 211-217 %V 7 %N 2 %I mathdoc %U http://geodesic.mathdoc.fr/item/JSFU_2014_7_2_a7/ %G en %F JSFU_2014_7_2_a7
Sergey P. Moshchenko; Anna A. Lyamkina. Modelling the localized surface plasmon resonance of nanoclusters of group~III metals and semimetallic antimony. Žurnal Sibirskogo federalʹnogo universiteta. Matematika i fizika, Tome 7 (2014) no. 2, pp. 211-217. http://geodesic.mathdoc.fr/item/JSFU_2014_7_2_a7/
[1] E. M. Purcell, “Spontaneous emission probabilities at radio frequencies”, Phys. Rev., 69:1–2 (1946), 681
[2] N. Koguchi, S. Takahashi, T. Chikyow, “New MBE growth method for InSb quantum well boxes”, J. Cryst. Growth, 111 (1991), 688–692 | DOI
[3] T. V. Shubina, A. A. Toropov, V. N. Jmerik, D. I. Kuritsyn, L. V. Gavrilenko, Z. F. Krasil'nik, T. Araki, Y. Nanishi, B. Gil, A. O. Govorov, S. V. Ivanov, “Plasmon-induced Purcell effect in InN/In metal-semiconductor nanocomposites”, Phys. Rev. B, 82 (2010), 073304 | DOI
[4] A. C. Lind, J. M. Greenberg, “Electromagnetic Scattering by Obliquely Oriented Cylinders”, J. Appl. Phys., 37 (1966), 3195–3203 | DOI
[5] S. Asano, G. Yamamoto, “Light Scattering by a Spheroidal Particle”, Appl. Opt., 14 (1975), 29–49 | DOI
[6] B. T. Draine, P. J. Flatau, “Discrete dipole approximation for scattering calculations”, J. Opt. Soc. Am. A, 11 (1994), 1491–1499 | DOI
[7] A. A. Lyamkina, D. V. Dmitriev, Y. G. Galitsyn, V. G. Kesler, S. P. Moshchenko, A. I. Toropov, “The investigation of intermediate stage of template etching with metal droplets by wetting angle analysis on (001) GaAs surface”, Nanoscale Res. Lett., 6 (2011), 42–48
[8] J. H. Lee, Z. M. Wang, N. Y. Kim, G. J. Salamo, “Size and Density Control of In Droplets at Near Room Temperatures”, Nanotechnology, 20 (2009), 285602 | DOI
[9] M. Alsawafta, M. Wahbeh, V.-V. Truong, “Plasmonic modes and optical properties of gold and silver ellipsoidal nanoparticles by the discrete dipole approximation”, J. Nanomater., 2012 (2012), 457968
[10] P. K. Jain, K. S. Lee, I. H. El-Sayed, M. A. El-Sayed, “Calculated absorption and scattering properties of gold nanoparticles of different size, shape, and composition: Applications in biological imaging and biomedicine”, J. Phys. Chem. B, 110 (2006), 7238–7248 | DOI
[11] G. W. Bryant, F. J. García de Abajo, J. Aizpurua, “Mapping the plasmon resonances of metallic nanoantennas”, Nano Lett., 8 (2008), 631–636 | DOI
[12] A. G. Brolo, S. C. Kwok, M. D. Cooper, M. G. Moffitt, C.-W. Wang, R. Gordon, J. Riordon, K. L. Kavanagh, “Surface plasmon-quantum dot coupling from arrays of nanoholes”, J. Phys. Chem. B, 110 (2006), 8307–8313 | DOI