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A displacement principle for mercury detection by optical waveguide and surface enhanced Raman spectroscopy
Yongmei Ma1, Honglin Liu, Kai Qian
1Institute of Intelligent Machines, Chinese Academy of Sciences, Hefei 230031, People's Republic of China.
Abstract:
A novel displacement principle of metal nanoparticles for target analysis, differing from the usual target-induced aggregation principle, was proved feasible by the use of para-aminothiophenol coupled Au nanoparticles (PATP-Au) multilayer as probes to detect Hg(2+). The PATP-Au multilayer was fabricated through layer-by-layer assembly of Au nanoparticles on optical waveguide (OWG) chip surface using para-aminothiophenol (PATP) as coupling molecules. The localized surface plasmon resonance (LSPR) extinction from Au nanoparticles and the PATP as a Raman reporter enable to easily capture changes in PATP-Au multilayer by OWG and of surface enhanced Raman spectroscopy, respectively. The introduction of the Hg(2+), which has a higher binding affinity to the thiol group of PATP, greatly destroyed the multilayer structure, and produced a large change, several folds higher than the noise, in LSPR features and Raman signals of PATP-Au multilayer probes, and resulted in an excellent selectivity for Hg(2+) detection at a low level of 1 nM. This investigation provides us more ideas on the future development of surface analysis techniques for the detection of various target analytes.
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