On-Chip Colorimetric Detection of Cu2+ Ions via Density-Controlled Plasmonic Core–Satellites Nanoassembly

We report on an on-chip colorimetric method for the detection and analysis of Cu2+ ions via the targeted assembly of plasmonic silver nanoparticles (2.6 nm satellites) on density-controlled plasmonic gold nanoparticles (50 nm cores) on a glass substrate. Without any ligand modification of the nanopa...

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Veröffentlicht in:Analytical chemistry (Washington) 2013-08, Vol.85 (16), p.7980-7986
Hauptverfasser: Song, Hyeon Don, Choi, Inhee, Lee, Suseung, Yang, Young In, Kang, Taewook, Yi, Jongheop
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container_end_page 7986
container_issue 16
container_start_page 7980
container_title Analytical chemistry (Washington)
container_volume 85
creator Song, Hyeon Don
Choi, Inhee
Lee, Suseung
Yang, Young In
Kang, Taewook
Yi, Jongheop
description We report on an on-chip colorimetric method for the detection and analysis of Cu2+ ions via the targeted assembly of plasmonic silver nanoparticles (2.6 nm satellites) on density-controlled plasmonic gold nanoparticles (50 nm cores) on a glass substrate. Without any ligand modification of the nanoparticles, by directly using an intrinsic moiety (carboxylate ion, COO–) surrounded with nanoparticles, the method showed a high selectivity for Cu2+, resulting in a nearly 2 times greater optical response compared to those of other metal ions via the targeted core–satellites assembly. By modulating the surface chemistry, it was possible to control the density of core gold nanoparticles on the surface, thus permitting easy tuning of the optical responses induced by plasmon coupling generated between each core–satellites nanostructure. Using chips with a controlled optimal core density, we observed the remarkable scattering color changes of the chips from green to yellow and finally to orange with the increase of Cu2+ concentration. The detection limits of the fabricated chips with controlled core densities (ca. 1821 and 3636 particles/100 μm2) are 10 nM and 10 pM, respectively, which are quite tunable and below the level of 20 μM (or 1.3 ppm) defined by the United States Environmental Protection Agency. The findings suggest that the method is a potentially promising protocol for detecting small molecules with target selectivity and the tunability of the detection limits by replacing with ligands and adjusting core densities.
doi_str_mv 10.1021/ac401796q
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Using chips with a controlled optimal core density, we observed the remarkable scattering color changes of the chips from green to yellow and finally to orange with the increase of Cu2+ concentration. The detection limits of the fabricated chips with controlled core densities (ca. 1821 and 3636 particles/100 μm2) are 10 nM and 10 pM, respectively, which are quite tunable and below the level of 20 μM (or 1.3 ppm) defined by the United States Environmental Protection Agency. 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By modulating the surface chemistry, it was possible to control the density of core gold nanoparticles on the surface, thus permitting easy tuning of the optical responses induced by plasmon coupling generated between each core–satellites nanostructure. Using chips with a controlled optimal core density, we observed the remarkable scattering color changes of the chips from green to yellow and finally to orange with the increase of Cu2+ concentration. The detection limits of the fabricated chips with controlled core densities (ca. 1821 and 3636 particles/100 μm2) are 10 nM and 10 pM, respectively, which are quite tunable and below the level of 20 μM (or 1.3 ppm) defined by the United States Environmental Protection Agency. 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subjects Cations, Divalent
Colorimetry - methods
Copper - analysis
Lab-On-A-Chip Devices
Metal Nanoparticles
title On-Chip Colorimetric Detection of Cu2+ Ions via Density-Controlled Plasmonic Core–Satellites Nanoassembly
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