Chinese Journal of Lasers, Volume. 42, Issue 3, 303013(2015)
Ag Periodic Nanostructures and Morphology Controlled by Ultraviolet-Visual Photoreduction for Surface-Enhanced Raman Scattering
[1] [1] P Marek, J Stepanek, B V Ickova, et al.. Laser ablation: Preparation of“chemically pure”Ag colloids for surface-enhanced Raman scattering spectroscopy[J]. J Mol Struct, 1997, 410: 213-216.
[2] [2] A M Ahern, R L Garrell. In situ photoreduced silver nitrate as a substrate for surface-enhanced Raman spectroscopy[J]. Anal Chem, 1987, 59(23): 2813-2816.
[3] [3] L Balan, R Schneider, C Turck. Photogenerating silver nanoparticles and polymer nanocomposites by direct activation in the near infrared[J]. J Nanomater, 2012, (1): 512579.
[4] [4] Y Cao, M Gu. λ/26 silver nanodots fabricated by direct laser writing through highly sensitive two-photon photoreduction[J]. Appl Phys Lett, 2013, 103(21): 213104.
[5] [5] S Shukla, E P Furlani, X Vidal, et al.. Two-photon lithography of sub-wavelength metallic structures in a polymer matrix[J]. Adv Mater, 2010, 22(33): 3695-3699.
[6] [6] T Naoto. N Kazuya. S Wataru. Two- photon laser fabrication of three- dimensional silver microstructures with submicron scale linewidth[J]. Appl Phys A, 2011, 103(2): 421-426.
[7] [7] W E Lu, Y L Zhang, M L Zheng, et al.. Femtosecond direct laser writing of gold nanostructures by ionic liquid assisted multiphoton photoreduction[J]. Opt Mater Express, 2013, 3(10): 1660-1673.
[8] [8] K Kaneko, H B Sun, X M Duan, et al.. Two-photon photoreduction of metallic nanoparticle gratings in a polymer matrix[J]. Appl Phys Lett, 2003, 83(7): 1426-1428.
[9] [9] M Fleischmann, P J Hendra, A J M Quillan. Raman spectra of pyridine adsorbed at a silver electrode[J]. Chem Phys Lett, 1974, 26(2): 163-166.
[10] [10] P Etchegoin, L F Cohen, H Hartigan, et al.. Electromagnetic contribution to surface enhanced Raman scattering revisited[J]. J Chem Phys, 2003, 119(10): 5281-5289.
[11] [11] M Kahraman, P Daggumati, O Kurtulus, et al.. Fabrication and characterization of flexible and tunable plasmonic nanostructures[J]. SCI REP-UK, 2013, 3: 3396.
[12] [12] X Y Zhang, A Hu, T Zhang, et al.. Self-assembly of large-scale and ultrathin silver nanoplate films with tunable plasmon resonance properties[J]. Acs Nano, 2011, 5(11): 9082-9092.
[13] [13] S Bai, W Zhou, C Tao, et al.. Laser-processed nanostructures of metallic substrates for surface-enhanced Raman spectroscopy[J]. Curr Nanosci, 2014, 10(6): 486-496.
[14] [14] A Hu, M Rybachuk, Q B Lu, et al.. Direct synthesis of sp-bonded carbon chains on graphite surface by femtosecond laser irradiation [J]. Appl Phys Lett, 2007, 91(13): 131906.
[15] [15] Wang Junqiao, Zhang Xinzheng, Sun Liping, et al.. Laser-induced deposition of silver nanoparticles films and microstructures onto glass substrates[J]. Chinese J Lasers, 2011, 38(1): 0107001.
[16] [16] Z Pang, X Zhang. Controlling microscopic and spectroscopic properties of metallic photonic crystals written by interference ablation [J]. Opt Commun, 2012, 285(21-22): 4583-4587.
[17] [17] S Bai, W Zhou, Y Lin, et al.. Ultraviolet pulsed laser interference lithography and application of periodic structured Ag-nanoparticle films for surface-enhanced Raman spectroscopy[J]. J Nanopart Res, 2014, 16(7): 2470.
[18] [18] J Chung, S Han, D Lee, et al.. Nanosecond laser ablation of silver nanoparticle film[J]. Opt Eng, 2013, 52(2): 024302.
[19] [19] M Aminuzzaman, A Watanabe, T Miyashita. Direct writing of conductive silver micropatterns on flexible polyimide film by laserinduced pyrolysis of silver nanoparticle-dispersed film[J]. J Nanopart Res, 2010, 12(3): 931-938.
[20] [20] A J Kora, R Manjusha, J Arunachalam. Superior bactericidal activity of SDS capped silver nanoparticles: Synthesis and characterization [J]. Mat Sci Eng C, 2009, 29(7): 2104-2109.
[21] [21] M Maillard, P Huang, L Brus. Silver nanodisk growth by surface plasmon enhanced photoreduction of adsorbed [Ag+][J]. Nano Lett, 2003, 3(11): 1611-1615.
[22] [22] W Zhou, A Hu, S Bai, et al.. Surface-enhanced Raman spectra of medicines with large-scale self-assembled silver nanoparticle films based on the modified coffee ring effect[J]. Nanoscale Res Lett, 2014, 9(1): 87.
[23] [23] J M De, K Giesfeldt, M J Sepaniak. Use of a sample translation technique to minimize adverse effects of laser irradiation in surfaceenhanced Raman spectrometry[J]. Appl Spectrosc, 2003, 57(4): 428-438.
[24] [24] A Hu, W W Duley. Surface enhanced Raman spectroscopic characterization of molecular structures in diamond-like carbon films [J]. Chem Phys Lett, 2008, 450(4-6): 375-378.
[25] [25] M L Ben, N Hundertmark, F Kullmann, et al.. Nano-structured surfaces by laser interference lithography and fs-laser direct writing as substrates for surface-enhanced Raman spectroscopy[C]. SPIE, 2013, 8244, 82440D.
Get Citation
Copy Citation Text
[in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Ag Periodic Nanostructures and Morphology Controlled by Ultraviolet-Visual Photoreduction for Surface-Enhanced Raman Scattering[J]. Chinese Journal of Lasers, 2015, 42(3): 303013
Category: laser manufacturing
Received: Aug. 7, 2014
Accepted: --
Published Online: Feb. 5, 2015
The Author Email: (baishi@emails.bjut.edu.cn)