Synthesis of Aqueous Au Core−Ag Shell Nanoparticles Using Tyrosine as a pH-Dependent Reducing Agent and Assembling Phase-Transferred Silver Nanoparticles at the Air−Water Interface
- 16 July 2004
- journal article
- research article
- Published by American Chemical Society (ACS) in Langmuir
- Vol. 20 (18), 7825-7836
- https://doi.org/10.1021/la049258j
Abstract
We demonstrate that the amino acid tyrosine is an excellent reducing agent under alkaline conditions and may be used to reduce Ag+ ions to synthesize stable silver nanoparticles in water. The tyrosine-reduced silver nanoparticles may be separated out as a powder that is readily redispersible in water. The silver ion reduction at high pH occurs due to ionization of the phenolic group in tyrosine that is then capable of reducing Ag+ ions and is in turn converted to a semi-quinone structure. These silver nanoparticles can easily be transferred to chloroform containing the cationic surfactant octadecylamine by an electrostatic complexation process. The now hydrophobic silver nanoparticles may be spread on the surface of water and assembled into highly ordered, linear superstructures that could be transferred as multilayers onto suitable supports by the versatile Langmuir−Blodgett technique. Further, tyrosine molecules bound to the surface of Au nanoparticles through amine groups in the amino acid may be used to selectively reduce silver ions at high pH on the surface of the Au nanoparticles, thus leading to a simple strategy for realizing phase-pure Au core−Ag shell nanostructures.Keywords
This publication has 106 references indexed in Scilit:
- Radiolytic Synthesis of Bimetallic Ag−Pt Nanoparticles with a High Aspect RatioThe Journal of Physical Chemistry B, 2003
- Electrophoretic and Structural Studies of DNA-Directed Au Nanoparticle GroupingsThe Journal of Physical Chemistry B, 2002
- Electrophoretic deposition of ligand-stabilized silver nanoparticles synthesized by the process of photochemical reductionJournal of Crystal Growth, 2000
- Assembling Gold Nanoparticles as Nanostructured Films Using an Electrophoretic ApproachNano Letters, 2000
- Buildup of Polymer/Au Nanoparticle Multilayer Thin Films Based on Hydrogen BondingChemistry of Materials, 2000
- Polymer-Protected Ni/Pd Bimetallic Nano-Clusters: Preparation, Characterization and Catalysis for Hydrogenation of NitrobenzeneThe Journal of Physical Chemistry B, 1999
- Enhancement of the Second Harmonic Response by Adsorbates on Gold Colloids: The Effect of AggregationThe Journal of Physical Chemistry B, 1999
- Enthalpy and Heat Capacity Changes for Formation of an Oligomeric DNA Duplex: Interpretation in Terms of Coupled Processes of Formation and Association of Single-Stranded HelicesBiochemistry, 1999
- Langmuir–Blodgett films of thiol-capped gold nanoclusters: fabrication and electrical propertiesThin Solid Films, 1998
- Structural Analysis of Self-Assembling Nanocrystal SuperlatticesAdvanced Materials, 1998