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Investigating Molecular Spontaneous Emission Rate Enhancement Close to Elliptical Nanoparticles by Boundary Integral Method | ||
Journal of Optoelectronical Nanostructures | ||
مقاله 3، دوره 1، شماره 3، آذر و دی 2016، صفحه 27-34 اصل مقاله (568.88 K) | ||
نوع مقاله: Articles | ||
نویسندگان | ||
Aida Firoozi؛ Ahmad Mohammadi* | ||
Department of Physics, Bushehr Branch, Persian Golf University, Bushehr, Iran | ||
تاریخ دریافت: 01 مهر 1395، تاریخ بازنگری: 10 مهر 1395، تاریخ پذیرش: 20 آبان 1395 | ||
چکیده | ||
Utilizing boundary integral method (BIM), we investigate molecular spontaneous emission rate enhancement in the vicinity of plasmonic nanoparticles of elliptical cross section. These types of nanoparticles can considerably enhance the molecule decay rate. The spontaneous emission rate can be modified by altering the aspect ratio of the elliptical nanoparticle, the background refractive index and nanoparticles material. It is shown that the decay rate can be enhanced by two or three orders of magnitude for dipole distances below 10 nanometers. The position of enhancement peaks can be adjusted in the investigated spectral range (400-1000 nm) by changing the aspect ratio of the nanoparticle or the refractive index of background medium and nanoparticles material. To validate our result, we use BIM method to calculate light scattering by a circular gold nanowire and compare it with analytical result. Then the effect of various parameters, including aspect ratio and material of nanoparticle and the background refractive index, on the decay rate is investigated. | ||
کلیدواژهها | ||
Spontaneous emission rate enhancement؛ Plasmonic nanoparticles؛ boundary integral method | ||
مراجع | ||
.[1] E.M. Purcell, Spontaneous emission probabilities at radio frequency, Phys. Rev, (1946) 69-681. [2] A. Mohammadi, V.Sandoghdar, M. Agio, Gold nanorods and nanospheroids for enhancing spontaneous emission, New Journal of Physics, (2008) 1-14. [3] S.A. Maier, Plasmonics Fundamentals and Applications, Springer, New York, (2007). [4] L. Rogobete, F. Kaminski, M. Agio, V. Sandoghdar, Design of plasmonic nanoantennae for enhancing spontaneous emission. Optics Letters, (2007) 1623- 1625. 34 * Journal of Optoelectronical Nanostructures Autumn 2016 / Vol. 1, No. 3 [5] A. Mohammadi, V. Sandoghdar, M. Agio, Gold, Copper, Silver and Aluminum Nanoantennas to Enhance Spontaneous Emission, Journal of Computational and Theoretical Nanoscience, (2009) 2024-2030. [6] L. Novotny, and B. Hecht, Principles of Nano-Optics, Cambridge University Press, Cambridge. England, (2006). [7] Ch. Hafner, Post-modern Electromagnetics, John Wiley & Sons, Chichester, (1999). [8] D. Sullivan, Electromagnetic Simulation Using the FDTD Method, IEEE Press, (2000). [9] A. Taflove, S.C. Hagness, Computational Electrodynamics: The Finite-difference Time-domain Method, Artech House, Norwood, (2005). [10] A.K, Aziz and I.M. BabuSka, Mathematical Foundations of the Finite Element Method with Applications to Partial Differential Equations, Academic Press, New York, (1972). [11] L. Rogobete, C. Henkel, Spontaneous emission in a subwavelength environment characterized by boundary integral equations, Physical Review A, (2004) 1-10. [12] M.N. Vesperinas, Scattering and Diffraction in Physical Optics, John Wiley and Sons, New York, (1991). [13] C.mF.Bohren and D.R.Huffman, Absorption and Scattering by Small Particles. Wiley, (1998) 194-208. | ||
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