Acta Photonica Sinica, Volume. 46, Issue 6, 616008(2017)
Study of Optical Properties of Au Nano-spheres in the Ambient Medium with Temperature Changing
[2] [2] SUN G, KHURGIN J B. Origin of giant difference between fluorescence, resonance, and nonresonance Raman scattering enhancement by surface plasmons[J]. Physical Review A , 2012, 85(6): 0634101-0634108
[3] [3] ATWATER H A, POLMAN A. Plasmonics for improved photovoltaic devices[J].Natrue Materials, 2010, 9(3): 205-213.
[4] [4] ALEXANDRE A, LEI D Y. Plasmonic light-harvesting devices over the whole visible spectrum[J]. Nano Letter, 2010, 10(7): 2574-2579.
[5] [5] TUERSUN P, HAN X E.Optimal design of gold nanoshells for optical imaging and photothermal therapy[J]. Optik, 2014, 125(14): 3702-3706.
[7] [7] GOVYADINOV A A, PANASYUK G Y, SCHOTLAND J C, et al. Theoretical and numerical investigation of the size-dependent optical effects in metal nanoparticles[J]. Physical Review B, 2011, 84(15): 155461 1-12.
[10] [10] BANSAL A, SEKHON J S, VERMA S S. Scattering efficiency and LSPR tunability of bimetallic Ag,Au, and Cu nanoparticles[J]. Plasmonics, 2014, 9(1): 143-150 .
[11] [11] ZHOU J, LU Z, ZHU X, et al. NIR photothermal therapy using polyaniline nanoparticles[J]. Biomaterials, 2013, 34(37): 9584-9592.
[12] [12] KIRUI D K, KRISHNAN S, STRICKLAND A D, et al. PAA-derived gold nanorods for cellular targeting and photothermal therapy[J]. Macromolecular Bioscience, 2011, 11(6): 779-88.
[13] [13] LI J L, GU M. Gold-nanoparticle-enhanced cancer photothermal therapy[J]. IEEE Journal of Selected Topics in Quantum Electronics, 2010, 16(4): 989-996.
[14] [14] BOHREN C F, HUFFMAN D R. Absorption and scattering of light by small particles[M]. Wiley, 1983.
[15] [15] MOROZ A. Electron mean-free path in metal-coated nanowires[J]. Journal of the Optical Society of America B, 2011, 28(5): 1130-1138.
[16] [16] CORONADO E A, SCHATZ G C. Surface plasmon broadening for arbitrary shape nanoparticles: A geometrical probability approach[J]. Journal of Chemical Physics, 2003, 119(7): 3926-3934.
[17] [17] YESHCHENKO O A, BONDARCHUK I S, GURIN V S, et al. Temperature dependence of the surface plasmon resonance in gold nanoparticles[J]. Surface Science, 2013, 608(5): 275-281.
[18] [18] YESHCHENKO O A. Temperature effects on the surface plasmon resonance in copper nanoparticles[J]. Ukrainian Journal of Physics, 2013, 58(3): 251.
[19] [19] YESHCHENKO O A, DMITRUK I M, ALEXEENKO A A, et al. Size and temperature effects on the surface plasmon resonance in silver nanoparticles[J]. Plasmonics, 2012, 7(3): 685-694.
[20] [20] KITTEL C. Introduction to solid state physics[M].Willey, New York, 2005.
[21] [21] RAKIC A D, DJURISIC A B, ELAZAR J M, et al. Optical properties of metallic films for vertical-cavity optoelectronic devices[J]. Applied Optics, 1998, 37(22): 5271-5283.
[22] [22] ASHCROFT N W, MERMIN N D . Solid state physics[M]. Orlando: Harcourt, 1976.
[23] [23] CHEN Y J, LEE M C, WANG C M. Dielectric function dependence on temperature for Au and Ag[J]. Japanese Journal of Applied Physics, 2014, 53(8S2): 1-3.
[24] [24] JOHNSON P B. Optical constants of the noble metals[J]. Physical Review B, 1972, 6(12): 4370-4379.
[25] [25] THORMHLEN I, STRAUB J, GRIGULL U. Refractive index of water and its dependence on wavelength, temperature, and density[J]. Journal of Physical & Chemical Reference Data, 1985, 14(4): 933-945.
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LUO Dao-bin, HAN Xiang-e, DUAN Lu-jie. Study of Optical Properties of Au Nano-spheres in the Ambient Medium with Temperature Changing[J]. Acta Photonica Sinica, 2017, 46(6): 616008
Received: Dec. 26, 2016
Accepted: --
Published Online: Jun. 27, 2017
The Author Email: Dao-bin LUO (luodaobin@sust.edu.cn)