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Silver nanoparticles and silver molybdate nanowires complex for surface-enhanced Raman scattering substrate |
Zhiyong BAO1, Li ZHANG2( ), Yucheng WU1( ) |
| 1. College of Material Science and Engineering, Hefei University of Technology, Hefei 230009, China; 2. Anhui Key Laboratory of Spin Electron and Nanomaterials (Cultivating Base), Department of Chemistry and Life Science, Suzhou University, Suzhou 234000, China |
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Abstract Selective synthesis of silver and uniform single crystalline silver molybdate nanowires in large scale can be easily realized by a facile soft template approach. Ag6Mo10O33 nanowires with a uniform diameter of about 50 nm and the length up to several hundred micrometers were synthesized in large scale for the first time at room temperature using 12-silicotungstic acid system. The silver nanoparticles can be easily synthesized with the assistance of UV-light. Sensitive surface-enhanced Raman scattering signals of p-aminothiophenol were observed on Ag nanoparticles and silver molybdate nanowires complex. The results demonstrated that synthetic method could be a potential mild way to selectively synthesize various molybdate nanowires with various phases in large scale. The silver nanoparticles and silver molybdate nanowires complex would be proposed for surface-enhanced Raman scattering substrate.
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| Keywords
12-tungstosilicate acid
hydrothermal approach
surface-enhanced Raman scattering
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Corresponding Author(s):
ZHANG Li,Email:zhlisuzh@163.com; WU Yucheng,Email:ycwu@hfut.edu.cn
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Issue Date: 05 June 2011
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| 1 |
Qi T, Takagi K, Fukazawa J. Scintillation study of ZnWO4 single crystals. Applied Physics Letters, 1980, 36(4): 278–279 doi: 10.1063/1.91452
|
| 2 |
van Uitert L G, Preziosi S. Zinc tungstates for microwave maser applications. Journal of Applied Physics, 1962, 33(9): 2908–2909 doi: 10.1063/1.1702581
|
| 3 |
Rushbrcoke J G, Ansorge R E. Optical fibre readout and performance of small scintillating crystals for a fine-grained gamma detector. Nuclear Instruments and Methods in Physics Research Section A, 1989, 280(1): 83–90 doi: 10.1016/0168-9002(89)91274-6
|
| 4 |
Tanaka K, Miyajima T, Shirai N, Zhuang Q, Nakata R. Laser photochemical ablation of CdWO4 studied with the time-of-flight mass spectrometric technique. Journal of Applied Physics, 1995, 77(12): 6581–6587 doi: 10.1063/1.359067
|
| 5 |
Qu W, Wlodarski W, Meyer J U. Comparative study on micromorphology and humidity sensitive properties of thin-film and thick-film humidity sensors based on semiconducting MnWO4. Sensors and Actuators B , 2000, 64(1–3): 76–82 doi: 10.1016/S0925-4005(99)00487-6
|
| 6 |
Ehrenberg H, Weitzel H, Held C, Fuess H, Wltschek G, Kroener T, van Tol J, Bonnet M. Magnetic phase diagrams of MnWO4. Journal of Physics: Condensed Matter, 1997, 9(15): 3189–3203 doi: 10.1088/0953-8984/9/15/011
|
| 7 |
Sleight A W. Structural crystallography and crystal chemistry. Acta Crystallographica Section B, 1972, 28(10): 2899–2902 doi: 10.1107/S0567740872007186
|
| 8 |
Chamberland B L, Kafalas J A, Goodenough J B. J. A. KaMlas, J. B. Goodenough. Characterization of chromium manganese oxide (MnCrO3) and chromium (III) manganate. Inorganic Chemistry, 1977, 16(1): 44–46 doi: 10.1021/ic50167a011
|
| 9 |
Swanson H E, Morris M C, Stanchfield R P, Evans E H. 3D architectures of iron molybdate: phase selective synthesis. National Bureau of Standards Monograph, 1963, 25: 24–35
|
| 10 |
Bonanni M, Spanhel L, Lerch M, Füglein E, Müller G, Jermann F. Conversion of colloidal ZnO-WO3 heteroaggregates into strongly blue luminescing ZnWO4 xerogels and films. Chemistry of Materials, 1998, 10(1): 304–310 doi: 10.1021/cm9704591
|
| 11 |
Li Y B, Bando Y, Golberg D, Uemura Y. SiO2-sheathed InS nanowires and SiO2 nanotubes. Applied Physics Letters, 2003, 83(19): 3999–4001 doi: 10.1063/1.1626259
|
| 12 |
Obare S O, Jana N R, Murphy C J. Preparation of polystyrene-and silica-coated gold nanorods and their use as templates for the synthesis of hollow nanotubes. Nano Letters, 2001, 1(11): 601–603 doi: 10.1021/nl0156134
|
| 13 |
Yin Y D, Lu Y, Sun Y G, Xia Y N. Silver nanowires can be directly coated with amorphous silica to generate well-controlled coaxial nanocables of silver/silica. Nano Letters, 2002, 2(4): 427–430 doi: 10.1021/nl025508+
|
| 14 |
Cui X J, Yu S H, Li L L, Biao L, Li H B, Mo M S, Liu X M. Selective synthesis and characterization of single-crystal silver molybdate/tungstate nanowires by a hydrothermal process. Chemistry, 2004, 10(1): 218–223 doi: 10.1002/chem.200305429
|
| 15 |
Shao M W, Lu L, Wang H, Wang S, Zhang M L, Ma D D D , Lee S T. An ultrasensitive method: surface-enhanced Raman scattering of Ag nanoparticles from β-silver vanadate and copper. Chemical Communications, 2008, (20): 2310–2312 doi: 10.1039/b802405g
|
| 16 |
Ca?amares M V, Garcia-Ramos J V, Gómez-Varga J D, Domingo C, Sanchez-Cortes S. Ag nanoparticles prepared by laser photoreduction as substrates for in situ surface-enhanced Raman scattering analysis of dyes. Langmuir , 2007, 23(9): 5210–5215 doi: 10.1021/la063445v
|
| 17 |
Wu D Y, Liu X M, Huang Y F, Ren B, Xu X, Tian Z Q. Surface catalytic coupling reaction of p-mercaptoaniline linking to silver nanostructures responsible for abnormal SERS enhancement: a DFT study. Journal of Physical Chemistry C, 2009, 113(42): 18212–18222 doi: 10.1021/jp9050929
|
| 18 |
Hill W, Wehling B. Potential- and PH-dependent surface-enhanced Raman scattering of p-mercapto aniline on silver and gold substrates. Journal of Physical Chemistry, 1993, 97(37): 9451–9455 doi: 10.1021/j100139a032
|
| 19 |
Osawa M, Matsuda N, Yoshii K, Uchida I. Charge transfer resonance Raman process in surface-enhanced Raman scattering from p-aminothiophenol adsorbed on silver: Herzberg-Teller contribution. Journal of Physical Chemistry, 1994, 98(48): 12702–12707 doi: 10.1021/j100099a038
|
| 20 |
Zhou Q, Li X W, Fan Q, Zhang X X, Zheng J W. Charge transfer between metal nanoparticles interconnected with a functionalized molecule probed by surface-enhanced Raman spectroscopy. Angewandte Chemie International Edition, 2006, 45(24): 3970–3973 doi: 10.1002/anie.200504419
|
| 21 |
Riskin M, Tel-Vered R, Lioubashevski O, Willner I. Ultrasensitive surface plasmon resonance detection of Trinitrotoluene by a bis-aniline-cross-linked Au nanoparticles composite. Journal of American Chemical Society, 2009, 131(21): 7368–7378 doi: 10.1021/ja9001212
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