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Using unmodified Au nanoparticles as colorimetric probes for TNT based on their competitive reactions with melamine

Using unmodified Au nanoparticles as colorimetric probes for TNT based on their competitive reactions with melamine
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摘要 Gold nanoparticles (Au NPs) can serve as visualized colorimetric probes for various targets and modification-free sensing strategies are preferred. The donor-acceptor interaction between the electron-rich melamine (MA) and the electron-deficient trinitrotoluene (TNT) allows formation of a supramolecule in aqueous solution. Melamine alone makes the initially individual reddish Au NPs aggregate into gray/blue Au NP assemblies due to melamine forming multiple ligand sites toward the Au NPs. Interestingly, the preformed supramolecule of MA-TNT disenables aggregation of the Au NPs. Therefore the unmodified Au NPs provide facile colorimetric probes for TNT detection in aqueous solution. Rapid identification of TNT is established by naked eye inspection. By using spectrophotometer tools, quantification of TNT is accomplished with a linear range of 80μmol L-1 to 1.2 mmol/L-1 and a limit of detection (LOD) of 27μmol/L^-1. In contrast to previous strategy with surface-modified Au NPs, here a modification-free sensing strategy for TNT assay has been developed with greater convenience, rapidity, and cost-effectiveness. Gold nanoparticles (Au NPs) can serve as visualized colorimetric probes for various targets and modification-free sensing strategies are preferred. The donor-acceptor interaction between the electron-rich melamine (MA) and the electron-deficient trinitrotoluene (TNT) allows formation of a supramolecule in aqueous solution. Melamine alone makes the initially individual reddish Au NPs aggregate into gray/blue Au NP assemblies due to melamine forming multiple ligand sites toward the Au NPs. Interestingly, the preformed supramolecule of MA-TNT disenables aggregation of the Au NPs. Therefore the unmodified Au NPs provide facile colorimetric probes for TNT detection in aqueous solution. Rapid identification of TNT is established by naked eye inspection. By using spectrophotometer tools, quantification of TNT is accomplished with a linear range of 80μmol L-1 to 1.2 mmol/L-1 and a limit of detection (LOD) of 27μmol/L^-1. In contrast to previous strategy with surface-modified Au NPs, here a modification-free sensing strategy for TNT assay has been developed with greater convenience, rapidity, and cost-effectiveness.
出处 《Chinese Chemical Letters》 SCIE CAS CSCD 2014年第9期1271-1274,共4页 中国化学快报(英文版)
基金 supported by National Natural Science Foundation of China (No.21375036) the Open Project Program of Key Laboratory of Theoretical Chemistry and Molecular Simulation of Education,Hunan University of Science and Technology (No.E21201)
关键词 Electron donor-acceptor interaction Gold nanoparticles MELAMINE TRINITROTOLUENE Colorirnetry Electron donor-acceptor interaction Gold nanoparticles Melamine Trinitrotoluene Colorirnetry
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参考文献32

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