A procedure for fabrication and performing the filter-based surface enhanced Raman spectroscopic (SERS) assay for the detection of chemical contaminants (i.e., pesticide ferbam and antibiotic ampicillin) is presented.
We demonstrate a method to fabricate highly sensitive surface-enhanced Raman spectroscopic (SERS) substrates using a filter syringe system that can be applied to the detection of various chemical contaminants. Silver nanoparticles (Ag NPs) are synthesized via reduction of silver nitrate by sodium citrate. Then the NPs are aggregated by sodium chloride to form nanoclusters that could be trapped in the pores of the filter membrane. A syringe is connected to the filter holder, with a filter membrane inside. By loading the nanoclusters into the syringe and passing through the membrane, the liquid goes through the membrane but not the nanoclusters, forming a SERS-active membrane. When testing the analyte, the liquid sample is loaded into the syringe and flowed through the Ag NPs coated membrane. The analyte binds and concentrates on the Ag NPs coated membrane. Then the membrane is detached from the filter holder, air dried and measured by a Raman instrument. Here we present the study of the volume effect of Ag NPs and sample on the detection sensitivity as well as the detection of 10 ppb ferbam and 1 ppm ampicillin using the developed assay.
Surface enhanced Raman spectroscopy (SERS) is a technique combining Raman spectroscopy with nanotechnology. The intensity of Raman scattering of analytes at noble metallic nano-surfaces is greatly enhanced by the localized surface plasmon resonance.1 Silver nanoparticles (Ag NPs) are by far the most widely used SERS substrates due to its high enhancement ability.2 Up to now, various synthetic methods of Ag NPs have been developed.3-6 Ag NPs can be used alone as effective SERS substrates, or combined with other materials and structures to enhance its sensitivity and/or functionality.7-11
SERS techniques have demonstrated great capacity for detection of various trace amount contaminants in food and environmental samples.12 Traditionally, there are two common ways for preparing a SERS sample: solution-based and substrate-based methods.13 The solution-based method uses NP colloids to mix with samples. Then the NP-analyte complex is collected using centrifugation, and deposited onto a solid support for Raman measurement after drying. The substrate-based method is usually applied by depositing several microliters of liquid sample onto the pre-fabricated solid substrate.14 However, neither of these two methods are effective and applicable for a large amount of sample volume. Several modifications of the SERS assays overcame the volume limits, such as the integration of a filter system15-21 or the incorporation of a microfluidic device.21-24 The modified SERS assays have shown great enhancement in sensitivity and feasibility for monitoring the chemical contaminants in large water samples.
Here we demonstrate the detailed protocol of fabrication and application of a syringe filter based SERS method to detect trace amount of pesticide ferbam and antibiotic ampicillin.
1. Silver Nanoparticle Synthesis15
2. Fabrication of a SERS Active Filter Membrane
3. Application of the SERS Active Filter System to Detect Chemical Contaminants
The major steps of this experiment were shown in the schematic diagram (Figure 1). Figure 2 demonstrated the importance to use the optimized volume of AgNPs in the membrane coating in order to reach the maximized sensitivity. 1 ml of Ag NPs provides the strongest signal when using ferbam, as compared to 0.5 ml (insufficient coating) or 2 ml (too much coating).
We were able to detect ferbam at 10 ppb level and ampicillin at 1 ppm with great signal intensity by the developed filter-based SERS assay (Figure 1). The SERS spectrum of ferbam exhibits distinct characteristic peaks at 10 ppb. The peak at 1,386 cm-1 is from the mixed vibration of CN and C=S stretching, and symmetric CH3 deformation. The peak at 1,516 cm-1 is associated with CH3 and CN stretching. The peak at 561 cm-1 is generated by SS streching.25-27 The spectrum of 1 ppm ampicillin was also clearly detected. The peak at 1,594 cm-1 and 1,447 cm-1 are from C=C stretching and CH3/CH2 deformation, respectively. The strong peak at 1,001 cm-1 is from the benzene ring vibration. The peak at 852 cm-1 is associated with symmetric CNC stretching.28-29 The experimental time for analyzing one sample is less than 20 min including the fabrication of SERS-active filter membrane with pre-synthesized Ag NPs.
With increasing sample volume, we can further increase the detection limit, as shown in Figure 4. We observed an increase of peak intensity when increasing the sample volume. This is the advantage of the filter based method as the volume is adjustable and the limit of detection is also adjustable.
Figure 1. A schematic diagram of filter SERS assay. Please click here to view a larger version of this figure.
Figure 2. SERS spectra of 5 ml 100 ppb ferbam passing through the membranes coated by different amount of Ag NPs. From top to bottom: 0.5 ml Ag colloid with 0.5 ml NaCl, 1.0 ml Ag with 1.0 ml NaCl, 1.5 ml Ag with 1.5 ml NaCl, respectively. Please click here to view a larger version of this figure.
Figure 3. SERS spectra of ferbam and ampicillin on Ag NPs coated filter membrane. From top to bottom: control of 50% acetonitrile, 10 ppb ferbam, control of water, 1 ppm Ampicillin, respectively. Please click here to view a larger version of this figure.
Figure 4. SERS spectra of different volumes of 100 ppb ferbam on Ag NPs coated filter membrane. From top to bottom: 3 ml ferbam, 5 ml ferbam, 7 ml ferbam, 9 ml ferbam, respectively. Please click here to view a larger version of this figure.
One of the critical steps in this protocol is the Ag NPs synthesis, where uniform Ag NPs are the key for consistent results. The heating time and the concentrations of precursors must be precisely controlled. The average size of this AgNPs preparation is 80 nm, which was measured by the Zetasizer (data not shown). Another critical step is the salt aggregation where the salt concentration and aggregation time must be precisely controlled. In addition, the choice of membrane is also critical as the membrane with a smaller pore size was found more effective to trap Ag nanoclusters. For the particular membrane used in this study, there is a front and back side where the front side must be placed up in the holder to connect the syringe. If it was placed down, the coating was much less effective. Avoiding bubbles when passing through the membrane is another key to a successful coating.
For troubleshooting of this assay, the following steps are recommended. If no or little signal is detected, check for the following causes. The main cause could be the Ag NPs are not aggregated enough to be trapped in the pores of the filter membrane. Increasing the salt concentration and/or incubation time can enhance the aggregation. Otherwise, check that the backside of the filter membrane is facing up and that the volume or concentration of sample loaded on to the membrane is not too low. If the signal of the target molecule is not consistent, check for the following causes: the size distribution of the Ag NPs may be too broad or the NPs are not evenly distributed on the membrane, probably due to too much aggregation of NPs or too fast passing through the membrane.
Compared with our previous data on using Ag dendrites as SERS substrate,30-31 the sensitivity of this filter-based SERS assay is much higher on ferbam detection. This is due to the advantage of the filter-based system, which can flow large amount of sample, so that more analyte molecules are concentrated onto the SERS substrate. Another advantage of using the filter-based system over the solution-based method is the ease of operation and fieldable measurement, as no centrifugation is needed to collect the NP-analyte complex. The limitation of this method is it cannot be used for complex liquid matrices such as milk directly, as the complex components can block the membrane pores. Pretreatment is needed to remove interfering components before passing the membrane.
In summary, we demonstrate a simple and sensitive filter-based SERS assay, which could be applied to the detection of contaminants or adulterations in liquid food matrix and environmental samples. To further push the limit of detection, optimization of the parameters, such as NP sizes and amount, salt concentration, sample volume and instrument parameters is needed.
The authors have nothing to disclose.
This material is based upon work supported by the U.S. Department of Homeland Security under Grant Award Number 2010-ST-061-FD0001 through a grant awarded by the National Center for Food Protection and Defense at the University of Minnesota. Disclaimer: The views and conclusions contained in this document are those of the authors and should not be interpreted as necessarily representing the official policies, either expressed or implied, of the U.S. Department of Homeland Security or the National Center for Food Protection and Defense.
Ampicillin | Fisher Scientific | BP1760-5 | N/A |
Ferbam | Chem Service | N-11970-250MG | 98+% |
Silver nitrate | Sigma Aldrich | 209139 | 99.0+% |
Sodium citrate dehydrate | Sigma Aldrich | W302600 | 99+% |
Sodium chloride | Sigma Aldrich | S7653 | 99.5+% |
EMD Millipore Durapore PVDF Membrane Filters | Fisher Scientific | VVLP01300 | 0.10 µm Pore Size, hydrophilic |
Polycarbonate Filter Holders | Cole-Parmer | EW-29550-40 | 13 mm diameter |
Analog Vortex Mixer | Fisher Scientific | 02-215-365 | N/A |
Nutating Mixers | Fisher Scientific | 05-450-213 | N/A |
DXR Raman spectroscope | Thermo Scientific | IQLAADGABFFAHCMAPB | Laser power: 1 mW Exposure time: 5 s |