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Application of Monodisperse Thermo-Responsive Composite Microgels with Core-Shell Structure Based on Au@Ag Bimetallic Nanorod as Core in Surface Enhanced Raman Spectroscopy Substrate 被引量:1

Application of Monodisperse Thermo-Responsive Composite Microgels with Core-Shell Structure Based on Au@Ag Bimetallic Nanorod as Core in Surface Enhanced Raman Spectroscopy Substrate
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摘要 The monodisperse Au@Ag bimetallic nanorod is encapsulated by crosslinked poly( N-isopropylacrylamide)( PNIPAM) to produce thermo-responsive composite microgel with well-defined core-shell structure( Au@ Ag NR@ PNIPAM microgel)by seed-precipitation polymerization method using butenoic acid modified Au @ Ag NRs as seeds. When the temperature of the aqueous medium increases from 20℃ to 50℃,the localized surface plasmon resonance( LSPR) band of the entrapped Au @ Ag NR is pronouncedly red-shifted because of the decreased spatial distances between them as a result of shrinkage of the microgels,leading to their plasmonic coupling. The temperature tunable plasmonic coupling is demonstrated by temperature dependence of the surface enhanced Raman spectroscopy( SERS) signal of 1-naphthol in aqueous solution. Different from static plasmonic coupling modes from nanostructured assembly or array system of noble metals,the proposed plasmonic coupling can be dynamically controlled by environmental temperature. Therefore, the thermo responsive hybrid microgels have potential applications in mobile LSPR or SERS microsensors for living tissues or cells. The monodisperse Au@Ag bimetallic nanorod is encapsulated by crosslinked poly( N-isopropylacrylamide)( PNIPAM) to produce thermo-responsive composite microgel with well-defined core-shell structure( Au@ Ag NR@ PNIPAM microgel)by seed-precipitation polymerization method using butenoic acid modified Au @ Ag NRs as seeds. When the temperature of the aqueous medium increases from 20℃ to 50℃,the localized surface plasmon resonance( LSPR) band of the entrapped Au @ Ag NR is pronouncedly red-shifted because of the decreased spatial distances between them as a result of shrinkage of the microgels,leading to their plasmonic coupling. The temperature tunable plasmonic coupling is demonstrated by temperature dependence of the surface enhanced Raman spectroscopy( SERS) signal of 1-naphthol in aqueous solution. Different from static plasmonic coupling modes from nanostructured assembly or array system of noble metals,the proposed plasmonic coupling can be dynamically controlled by environmental temperature. Therefore, the thermo responsive hybrid microgels have potential applications in mobile LSPR or SERS microsensors for living tissues or cells.
出处 《Journal of Donghua University(English Edition)》 EI CAS 2016年第1期112-116,共5页 东华大学学报(英文版)
基金 National Natural Science Foundation of China(No.51373030) Chinese Universities Scientific Fund(No.CUSF-DH-D-2014023)
关键词 smart composite microgels core-shell structure Au@Ag bimetallic nanorods thermo-responsiveness surface enhanced Raman spectroscopy(SERS) smart composite microgels core-shell structure Au@Ag bimetallic nanorods thermo-responsiveness surface enhanced Raman spectroscopy(SERS)
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  • 1Li J M, Ma W F, Wei C, et al. Poly ( styrene-co-acrylic acid) Core and Silver Nanoparticle/Siliea Shell Composite Microspheres as High Performance Surface-Enhanced Raman Spectroscopy (SERS) Substrate and Molecular Bareode Label[ J]. Journal of Materials Chemistry, 2011,21 ( 16 ) : 5992 -5998.
  • 2Liu X, Zhang C, ;fang J, "et al silver Nanopartieles Loading pH Responsive Hybrid Microgels: pH Tunable Plasmonie Coupling Demonstrated by Surface Enhanced Raman Scattering [ J ]. RSC Advances, 2013, 3(10): 3384-3390.
  • 3Hou L, Wu P. The Effect of Added Gold Nanoparticles on the Volume Phase Transition Behavior for PVCL-based Microgels [ J]. RSC Advances, 2014, 4(74) : 39231-39241.
  • 4Thanh N T, Green L A. Fanelionalisation of Nanoparticles for Biomedical Applications[J]. Nano Today, 2010, 5(3): 213- 230.
  • 5Anker J N, Hall W P, Lyandres O, et al. Biosensing with Plasmonic Nanosensors[ J]. Nature Materials, 2008, 7(6) : 442- 453.
  • 6SauTK, Rogach A L, Jackel F, et al. Properties and Applications of Colloidal Nonspherical Noble Metal Nanopartieles [ J]. Advanced Materials, 2010, 22(16) : 1805-1825.
  • 7Orendorff C J, G-earheart L, Jana N R, et al. Aspect Ratio Dependence on Surface Enhanced Raman Scattering Using Silver and Gold Nanorod Substrates [ J ]. Physical Chemistry Chemical Physics, 2006, 8(1): 165-170.
  • 8Jiang R, Chen H, Shao L,et al. Unraveling the Evolution and Nature of the Plasmons in ( Au Core)-( Ag Shell) Nanorods[ J]. Advanced Materials, 2012, 24(35) : 200-207.
  • 9Sanchez-lglesias A, Ca_rbo-Argibay E, Glaria A, et al. Rapid Epitaxial Growth of Ag on Au Nanoparticles: From Au Nanorods to Core-SheU Au @ Ag Octahedrons [ J ]. Chemistry-A European Journal, 2010, 16(19) : 5558-5563.
  • 10Ah C S, Hong S D, Jang D J. Preparation of AucoreAgshell Nanorods and Characterization of Their Surface Plasmon Resonances[J]. Journal of Physical Chemistry B, 2001, 105 (33) : 7871-7873.

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