This application note outlines the extraction of five organophosphate compounds monocrotophos, diazinon, malathion, EPN, and methamidophos using one solid phase extraction method with one pre-treatment step of sodium chloride (NaCl) using Biotage automated or manual SPE solutions and DryVap™* Concentrator System. The first section will highlight the use of the Biotage® Horizon 5000 fully automated extraction system and the method used for this application. Additionally, there will be an Application Modification section that will highlight the use of the Biotage® VacMaster™ Disk for this application.
Monocrotophos, diazinon, malathion, EPN, and methamidophos are commonly used pesticides for the control of insects and aquatic pests in rice production, other agricultural production, and fish aquaculture in parts of the world. Methamidophos
in particular is used in great quantities in rice fields in China where rice–fish culture is common as well as in many other rice-producing countries (e.g., Thailand, Malaysia, and the Philippines). Given their prevalent use throughout Asia, residues of monocrotophos, diazinon, malathion, EPN, and methamidophos show up in many food sources and are
commonly monitored in wastewater and drinking water in these regions. As a result, many analytical methodologies have been created to monitor these compounds in the environment.
The traditional extraction methods employed use solid phase extraction (SPE) for monocrotophos, diazinon, malathion, EPN and a separate liquid-liquid extraction (LLE) method for methamidaophos. Methamidophos is problematic to extract in traditional SPE and LLE methodologies due to its extreme hydrophilic nature making exchange into a non-polar solvent or absorption onto a solid phase sorbent very difficult, resulting in extremely low recoveries of this compound. In the separate LLE method it is necessary to add a quantity of salt (NaCl) in order to decrease Metamidophos’s affinity for the water phase making it partition more easily into the organic phase. This technique, Salting-out Liquid-Liquid Extraction (SALLE)1, has been employed for many years when trying to extract extremely hydrophilic polar molecules from aqueous matrices. Extraction of all five of these compounds takes time as two separate extraction methodologies must be used.
*The DryVap™ system has been discontinued. We recommend using the TurboVap® evaporation systems for achieving equivalent results.
» Biotage® Horizon 5000 Automated Extraction System with OnePass Kit
» Atlantic® HLB-H SPE Disk (47 mm)
» One-Pass Carbon Cartridge Max Detect, 20 cc
» DryVap™ Concentrator System
» DryDisk® Solvent Drying System
|
Step |
Select Solvent |
Volume (mL) |
Purge (s) |
Vacuum |
Saturate (s) |
Soak (s) |
Drain/ Elute (s) |
Sample Delay (s) |
|
Pause with Message |
Part 1 of 2: Have the HLB-H disk in the 47 mm disk holder with any prefilters. Detach the waste lines from one another and attach the carbon cartridge in-line on the OnePass lines. Press "Continue" to begin part 1. |
|||||||
|
Condition SPE Disk |
Dichloromethane |
15 |
60 |
2 |
1 |
30 |
30 |
|
|
Condition SPE Disk |
Acetone |
11 |
60 |
2 |
1 |
30 |
30 |
|
|
Condition SPE Disk |
Reagent water |
15 |
60 |
2 |
1 |
10 |
4 |
|
|
Condition SPE Disk |
Reagent water |
15 |
60 |
2 |
1 |
10 |
4 |
|
|
Load Sample |
|
|
|
3 |
|
|
|
45 |
|
Air Dry Disk |
|
|
|
6 |
|
|
60 |
|
|
Elute Sample Container |
Acetone |
8 |
15 |
2 |
1 |
180 |
40 |
|
|
Elute Sample Container |
Dichloromethane |
8 |
15 |
2 |
1 |
180 |
40 |
|
|
Elute Sample Container |
Dichloromethane |
8 |
15 |
2 |
1 |
60 |
40 |
|
|
Elute Sample Container |
Dichloromethane |
8 |
15 |
2 |
1 |
60 |
40 |
|
|
Elute Sample Container |
Dichloromethane |
8 |
15 |
2 |
1 |
60 |
120 |
|
|
Pause with Message |
Part 2 of 2: Detach the carbon cartridge and reattach the OnePass lines together. Using the plunger, plunge once to remove the excess water and reseat the frit. Remove the disk holder from the platform and replace it with the cartridge and 20 cc funnel adapter. Press "Continue" to begin part 2. |
|||||||
|
Air Dry Disk |
|
|
|
6 |
|
|
600 |
|
|
Elute Sample Container |
Acetone |
8 |
15 |
2 |
1 |
60 |
0 |
|
|
Elute Sample Container |
Acetone |
8 |
15 |
2 |
1 |
60 |
120 |
|
|
Elute Sample Container |
Dichloromethane |
8 |
15 |
2 |
1 |
60 |
40 |
|
|
Elute Sample Container |
Dichloromethane |
8 |
15 |
2 |
1 |
180 |
40 |
|
|
Elute Sample Container |
Dichloromethane |
8 |
15 |
2 |
1 |
60 |
40 |
|
|
Elute Sample Container |
Dichloromethane |
8 |
15 |
6 |
1 |
60 |
120 |
|
* Due to the high salt content, it is necessary to rinse the liquid flow path of the Biotage® Horizon 5000 system to remove the salt residue. This is accomplished by rinsing the flow path with a sample bottle of warm water placed on the Biotage® Horizon 5000 and running the sample drain method on the software, this is followed by running a purge method with reagent water, acetone, and methylene chloride.
|
PARAMETER |
SETTING |
|
Dry Volume |
20 |
|
Heat Power |
5 |
|
Auto Rinse Mode |
OFF |
|
Heat Timer |
OFF |
|
Nitrogen Sparge |
20 psi |
|
Vacuum |
-7 in. Hg |
* Due to the high salt content, it is necessary to thoroughly rinse the sparge tube of the DryVap™ to remove all salt residues. Accomplish this by processing 100 mL of warm water followed by acetone and methylene chloride through the DryDisk tube into the evaporator tube.
* Due to the high salt content, it is necessary to thoroughly rinse the sparge tube of the DryVap™ to remove all salt residues. Accomplish this by processing 100 mL of warm water followed by acetone and methylene chloride through the DryDisk tube into the evaporator tube.
|
Parameter |
Setting |
|
Oven |
|
|
Initial Temperature |
60 °C |
|
Initial Time |
2 minutes |
|
Ramps: |
Rate Final Temp Final Time 20.00 270 °C 0.00 6.00 320 °C 2.00 |
|
Run Time |
22.83 minutes |
|
Inlet |
|
|
Mode |
Pulsed Splitless |
|
Initial Temperature |
280 °C |
|
Pressure |
8.24 psi |
|
Pulsed Pressure |
25 psi |
|
Pulsed Time |
1.00 minutes |
|
Purge Flow |
50 mL/min |
|
Purge Time |
2.00 minutes |
|
Mass Spectrometer |
|
|
Acquisition Mode |
SIM |
|
Solvent Delay |
5 minutes |
|
Group 1 |
5–9 minutes, ions 94 and 141 |
|
Group 2 |
9–12 minutes, ions 127, 192, 179, 137, 173, 125 |
|
Group 3 |
12 minutes–end, ions 244, 122, 157, 169 |
Figure 1: Biotage® Horizon 5000 Automated Extraction System.
Figure 2: DryVap™ Concentrator System.
|
Solvent |
Volume (mL) |
Saturate (sec.) |
Soak (sec.) |
Waste Destination |
Drain (sec.) |
|
Methylene Chloride |
15 |
1 |
30 |
Organic |
30 |
|
Acetone |
11 |
1 |
30 |
Organic |
30 |
|
Reagent Water |
15 |
1 |
10 |
Organic |
4 |
|
Reagent Water |
15 |
1 |
10 |
Organic |
4 |
|
Solvent |
Volume (mL) |
Saturate (sec.) |
Soak (sec.) |
Waste Destination |
Elute (sec.) |
|
Acetone |
8 |
1 |
180 |
Organic |
40 |
|
Methylene Chloride |
8 |
1 |
180 |
Organic |
40 |
|
Methylene Chloride |
8 |
1 |
60 |
Organic |
40 |
|
Methylene Chloride |
8 |
1 |
60 |
Organic |
40 |
|
Methylene Chloride |
8 |
1 |
60 |
Organic |
120 |
|
Solvent |
Volume (mL) |
Saturate (sec.) |
Soak (sec.) |
Waste Destination |
Elute (sec.) |
|
Acetone |
8 |
3 |
60 |
Organic |
0 |
|
Acetone |
8 |
3 |
60 |
Organic |
120 |
|
Methylene Chloride |
8 |
3 |
60 |
Organic |
40 |
|
Methylene Chloride |
8 |
3 |
180 |
Organic |
40 |
|
Methylene Chloride |
8 |
3 |
60 |
Organic |
40 |
|
Methylene Chloride |
8 |
3 |
60 |
Organic |
120 |
Literature number: AN078