| Literature DB >> 25593553 |
Qingye Liu1, Guiqing Wen1, Xinghui Zhang1, Aihui Liang1, Zhiliang Jiang1.
Abstract
The blue triangle nanosilver (Entities:
Keywords: Blue triangle nanosilver; SERS quantitative; Safranine T; Spherical nanosilver; Ti
Year: 2014 PMID: 25593553 PMCID: PMC4273675 DOI: 10.1186/1556-276X-9-663
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1Principle for SERS detection of Ti, based on its catalysis of KBrO-ST reaction. (a) Blank: the uncatalytic reaction of KBrO3-ST was slow, and the SERS peak at 1535 cm−1 was strong; (b) Ti(IV) catalysis: the catalytic reaction was fast, and the SERS peak was weak.
Figure 2TEMs of blue triangle nanosilvers and spherical nanosilvers. (a) The 1.0 × 10−5 mol/L BAgNP was prepared by the two reducers of NaBH4 and H2O2; (b) the spherical nanosilvers were obtained by mixing 1.0 × 10−5 mol/L BAgNP and 15 × 10−4 mol/L NaCl.
Figure 3The formation and oxidization processes of BAgNPs and their size distribution. (a) BAgNPs were prepared by the two reducers of NaBH4 and H2O2, and they could be oxidized to form big AgNP/AgCl particles by the excess H2O2, in the existence of NaCl; (b) the size distribution of BAgNP was in the range of 0.5 to 200 nm with an average size of 50 nm, and the size distribution of the spherical nanosilver sol was in the range of 2 to 500 nm with an average size of 95 nm.
Figure 4Absorption spectra of the BAgNP-NaX sols in different colors. (a) 5.0 × 10−5 mol/L BAgNP sol was in blue; (b) the BAgNP sol was mixed with 5.0 × 10−4 mol/L NaCl that showed a blue-violet color; (c) (a) + 10 × 10−4 mol/L NaCl solution in light yellow; (d) (a) + 15 × 10−4 mol/L NaCl solution in yellow; (e) (a) + 100 × 10−4 mol/L NaCl solution in yellow; (f) (a) + 250 × 10−4 mol/L NaCl solution in yellow; (g) 5.0 × 10−5 mol/L BAgNP + 2.5 × 10−6 mol/L NaBr solution in yellow; (h) 5.0 × 10−5 mol/L BAgNP + 40 × 10−6 mol/L KI solution in deep yellow.
Figure 5RRS spectra of the BAgNP-NaX system. (a) the 5.0 × 10−5 mol/L BAgNP sol exhibited a weak RRS signal at 457 nm; (b) the (a) + 5.0 × 10−4 mol/L NaCl system exhibited the strongest RRS peak at 457 nm; (c) the (a) + 10 × 10−4 mol/L NaCl system exhibited a strong RRS peak at 457 nm; (d) the (a) + 15 × 10−4 mol/L NaCl system exhibited the strongest RRS peak at 457 nm; (e) the a + 100 × 10−4 mol/L NaCl system exhibited the strongest RRS peak at 457 nm; (f) the (a) + 250 × 10−4 mol/L NaCl system exhibited the strongest RRS peak at 457 nm; (g) the 5.0 × 10−5 mol/L BAgNP + 2.5 × 10−6 mol/L NaBr system exhibited the strongest RRS peak at 456 nm; (h) the 5.0 × 10−5 mol/L BAgNP + 40 × 10−6 mol/L KI system exhibited the strongest RRS peak at 355 nm.
Figure 6SERS spectra of the Ti(IV)-KBrO-ST catalytic reaction in the BAgNP sol substrate. (a) 0.5 μmol/L ST +1.25 mmol/L KBrO3 + 50 mmol/L H2SO4 + 15 min +60 mmol/L NaCl +25 μmol/L AgNPB; (b) (a) + 40 ng/mL Ti; (c) (a) + 90 ng/mL Ti; (d) (a) + 100 ng/mL Ti. The inserted figure of working curve showed that the decreased SERS intensity at 1,535 cm−1 was linear to the Ti concentration in the range of 1.0 to 100 ng/mL.
Effect of coexistent ions on the SERS quantitative analysis of 40 ng/mL Ti
| Ca2+ | 400 | 4.1 | Zn2+ | 100 | 3.8 |
| Mg2+ | 400 | 3.9 | Mn | 100 | 4.6 |
| Al3+ | 300 | 5.0 | Cu2+ | 100 | 5.2 |
| Cr3+ | 200 | 6.0 | Cu2+ a | 200 | 5.2 |
| Pb2+ | 150 | 5.2 | Fe3+ | 20 | 5.4 |
| Ba2+ | 300 | 6.2 | Fe3+ a | 400 | 4.6 |
| Co2+ | 100 | 2.9 | Cd2+ | 400 | 4.3 |
aContaining 10 mg/mL hydroxylamine hydrochloride.
Analytical results for Ti in tea samples using the catalytic SERS and AAS methods
| 1 | 9.50, 9.85, 10.3, 9.40, 10.5 | 9.91 | 3.5 | 10.0 | 19.1 | 91.8 | 10.3 |
| 2 | 11.1, 11.0, 12.5, 11.8, 11.9 | 11.7 | 5.3 | 10.0 | 22.8 | 109 | 12.0 |
| 3 | 13.5, 14.3, 13.2, 14.2, 14.5 | 13.9 | 4.0 | 10.0 | 24.8 | 106 | 13.1 |