光学技术, 2019, 45 (3): 288, 网络出版: 2019-08-07  

利用表面等离子体共振效应确定金纳米棒的尺寸

Determination of the size of gold nanorods using surface plasmon resonance
作者单位
黑龙江大学 电子工程学院,  黑龙江 哈尔滨 150080
引用该论文

陈爽, 高亚臣. 利用表面等离子体共振效应确定金纳米棒的尺寸[J]. 光学技术, 2019, 45(3): 288.

CHEN Shuang, GAO Yachen. Determination of the size of gold nanorods using surface plasmon resonance[J]. Optical Technique, 2019, 45(3): 288.

参考文献

[1] Aubry A, Lei D Y, Fernandez-Dominguez A I, et al. Plasmonic light-harvesting devices over the whole visible spectrum [J]. Nano Letter,2010,10(7):2574-2579.

[2] Hppener C H, Lapin Z J, Bharadwaj P, et al. Self-similar gold-nanoparticle antennas for a cascaded enhancement of the optical field[J]. Physical Review Letters,2012,109(1):017402.

[3] Zhao J H, Yuan H C, Hong X et al. Determination of oxytetracycline content in duck meat using silver nanopartile enhanced fluorescence[J]. Optics and Precision Engineering,2014,22(11):2902-2907.

[4] Chuang M K, Yang S S, Chen F C. Metal nanoparticle-decorated two-dimensional molybdenum sulfide for plasmonic-enhanced polymer photovoltaic devices[J]. Materials,2015,8(8):5414-5425.

[5] Tuersun P, Han X E. Optimal design of gold nanoshells for optical imaging and photothermal therapy[J]. Optik-International Journal for Light and Electron Optics,2014,125(14):3702-3706.

[6] Quinten M. Optical properties of nanoparticle systems: Mie and beyond[M]. Germany:Wiley-VCH Verlag GmbH & Co press,2010:1-485.

[7] Jana N R, Gearheart L, Murphy C J. Seeding growth for size control of 5-40nm diameter gold nanoparticles [J]. Langmuir,2001,17(22):6782-6786.

[8] Feng H, Yang Y, You Y, et al. Simple and rapid synthesis of ultrathin gold nanowires, their self-assembly and application in surface-enhanced Raman scattering[J]. Chemical Communications,2009,(15):1984-1986.

[9] Jana N R, Gearheart L, Murphy C J. Seed-mediated growth approach for shape-controlled synthesis of spheroidal and rod-like gold nanoparticles using a surfactant template[J]. Advanced materials,2001,13(18):1389-1393.

[10] Lim B, Xia Y. Metal nanocrystals with highly branched morphologies[J]. Angewandte Chemie International Edition,2011,50(1):76-85.

[11] Hao E, Bailey R C, Schatz G C, et al. Synthesis and optical properties of branched gold nanocrystals[J]. Nano Letters,2004,4(2):327-330.

[12] Stender A S, Wei X, Augspurger A E, et al. Plasmonic behavior of single gold dumbbells and simple dumbbell geometries[J]. The Journal of Physical Chemistry C,2013,117(31):16195-16202.

[13] Murphy C J, Thompson L B, Alkilany A M, et al. The many faces of gold nanorods [J]. The Journal of Physical Chemistry Letters,2010,1(19):2867-2875.

[14] Davies A J. The finite element method [M]. Oxford:Clarendon press,1980:1-663.

[15] Cao Z Q. Transfer matrix method in guided wave optics[M]. Shanghai: Shanghai Jiao Tong University Press,2000:88-95.

[16] Moharam M G, Gaylord T K. Three-dimensional vector coupled-wave analysis of planar-grating[J]. Journal of the Optical Society of America,1983,73(9):1105-1112.

[17] Han J G, Wan F, Zhu Z Y, et al. Shift in low-frequency vibrational spectral of transition-metal zirconium compounds[J]. Applied Physics Letters,2005,87(17):172107.

[18] Ke S L, Wei C X, Mo B, et al. Research progress on the optical properties of gold nanorods[J]. Acta Physico-Chimica Sinica,2012,28(6):1275-1290.

[19] Johnson P B, Christy R W. Optical constants of the noble metals[J]. Phys Rev B,1972,6(12):4370-4379.

[20] Ye X, Zheng C, Chen J, et al. Using binary surfactant mixtures to simultaneously improve the dimensional tunability and monodispersity in the seeded growth of gold nanorods[J]. Nano Letters,2013,13(2):765-771.

陈爽, 高亚臣. 利用表面等离子体共振效应确定金纳米棒的尺寸[J]. 光学技术, 2019, 45(3): 288. CHEN Shuang, GAO Yachen. Determination of the size of gold nanorods using surface plasmon resonance[J]. Optical Technique, 2019, 45(3): 288.

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