The Preparation of Silver Nanowires and the Study of SERS Activity of Single Nanowire

Article Preview

Abstract:

In this report, the polyol process was used for preparing silver nanowires. In this improved method, the silver nanowires with high purity, high yield and high sensitive surface enhanced Raman scattering (SERS) activity were synthesized mainly by sealed heating. Then the samples were characterized by scanning electron microscopy (SEM). Its optical absorption properties were measured by UV-Vis spectrophotometer; furthermore, SERS spectra of R6G molecule on the single nanowire was obtained and systematically studied by excitation wavelength 532nm. Our experimental results showed that the length of nanowires by our improved method is uniform and has high yield, high purity and higher SERS enhancement effect. The UV-Vis absorption spectrum of the samples displayed the transverse and longitudinal plasma resonance (SPR) absorption bands of silver nanowires which are located at 358nm and 416nm, respectively. Also single nanowire SERS activities which are dependent on the different substrates were researched.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 535-537)

Pages:

384-387

Citation:

Online since:

June 2012

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2012 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Á. C. Míriam, M. D. Manuel and R. G. Ignacio: Chem. Rev. Vol. 108 (2008), p.3174.

Google Scholar

[2] L. F. Guo, M. Chipara and J. M. Zaleski: Chem. Mater. Vol. 19 (2007), p.1755.

Google Scholar

[3] Y. T. Pang, G. W. Meng, Q. Fang and L. D. Zhang: Nanotechnology. Vol. 14 (2003), p.20.

Google Scholar

[4] A. R. Tao, P. J.Yang: Phys. Chem. B Vol. 109 (2005), p.15687.

Google Scholar

[5] K. L. Kelly, E. Coronado, L. L. Zhao and G. C. Schatz: J. Phys. Chem. B Vol. 107 (2003), pp.668-677.

Google Scholar

[6] Mengtao Sun, Yanxue Hou and Hongxing Xu:Nanoscale.Vol. 3 (2011), p.4114.

Google Scholar

[7] Yingzhou Huang, Yuri Fang and Mengtao Sun: J. Phys. Chem. Vol. 115 (2011), p.3560.

Google Scholar

[8] A.M. Morales, C.M. Lieber: Science, Vol. 279 (1998), P. 208.

Google Scholar

[9] J.T. Hu, T.W. Odom and C.M. Lieber: Acc. Chem. Res .Vol. 32 (1999), P. 435.

Google Scholar

[10] Y.W. Wang, L.D. Zhang, G.Z. Wang, X.S. Pong, Z.Q. Chu, C.H. Liang: J. Crystal Growth .Vol. 234 (2002), p.171.

Google Scholar

[11] Y.W. Wang, G.W. Meng, L.D. Zhang, C.H. Liang, J. Zhang: Chem. Mater. Vol. 14 (2002), P. 1773.

Google Scholar

[12] F. Fievet, J. P. Lagier, B. Blin: Solid State lonics .Vol.32 (1989), P. 1981.

Google Scholar

[13] Y.G. Sun, Y.D. Yin, B.T. Mayers, T. Herricks, Y.N. Xia: Chem. Mater. Vol. 14 (2002), p.4736.

Google Scholar

[14] Sukdeb Pal, Yu Kyung Tak and Joon Myong Song: Applied and environmental microbiology. Vol. 73 (2007), p.1773.

Google Scholar

[15] C.J. Murphy, N.R. Jana: Adv. Mater. Vol.14 (2004), pp.80-82.

Google Scholar

[16] Yugang Sun, Yadong Yin, Brian T Mayers: Chem. Mater. Vol. 14 (2002), pp.4736-4745.

Google Scholar

[17] Yngang Sun, Byron Gate, Brain Mayers: Nano Leters. Vol. 2 (2002), pp.165-168.

Google Scholar

[18] Zhipeng Li, Yurui Fang, Zhiqiang Guan: physical review B Vol. 82 (2010), pp.241402-3.

Google Scholar