Trace Analysis of PAH´s and PCB´s in Soil through On-Line Direct Thermal Desorption
Applications | 1994 | GERSTELInstrumentation
Rapid and accurate assessment of soil contamination by volatile organic pollutants such as PAHs and PCBs is essential for environmental monitoring and risk assessment. Traditional solvent-based extraction methods are time-consuming and labor-intensive, creating demand for faster, automated screening approaches.
This study evaluates a fully automated direct thermal desorption system coupled with cryofocusing and GC–MS for semi-quantitative trace analysis of PAHs, PCBs, and mineral oil hydrocarbons in soil. It aims to demonstrate method performance, simplify sample preparation, and compare results with established reference techniques.
The combined thermal desorption and cryofocusing GC–MS approach provides a fast, reliable, and semi-quantitative screening method for volatile contaminants in soils. It eliminates lengthy solvent extractions while delivering trace-level detection across a wide boiling-point range with minimal manual intervention.
GC/MSD, Thermal desorption, GC/SQ
IndustriesEnvironmental
ManufacturerAgilent Technologies, GERSTEL
Summary
Significance of the Topic
Rapid and accurate assessment of soil contamination by volatile organic pollutants such as PAHs and PCBs is essential for environmental monitoring and risk assessment. Traditional solvent-based extraction methods are time-consuming and labor-intensive, creating demand for faster, automated screening approaches.
Objectives and Study Overview
This study evaluates a fully automated direct thermal desorption system coupled with cryofocusing and GC–MS for semi-quantitative trace analysis of PAHs, PCBs, and mineral oil hydrocarbons in soil. It aims to demonstrate method performance, simplify sample preparation, and compare results with established reference techniques.
Instrumentation
- Thermal Desorption System (TDS 2, Gerstel GmbH) for controlled heating of soil samples
- Cooled Injection System (CIS 3, Gerstel GmbH) with programmable liner (–150 °C to 400 °C)
- Gas Chromatograph (HP 5890 Series II, Hewlett-Packard)
- Mass Selective Detector (HP 5972, Hewlett-Packard)
Methodology
- Soil samples crushed (<4 mm) with no drying to preserve native moisture
- Samples placed in glass tubes precooled to subambient temperature
- Thermal desorption to 350 °C under carrier gas flow transfers volatiles into the CIS
- Cryofocusing at subzero temperatures followed by rapid CIS heating to 400 °C for injection onto a DB-5 column
- Oven program: 60 °C to 250 °C at 10 °C/min, then 250 °C to 320 °C at 5 °C/min
- Mass spectrometric detection for selective identification and quantification
Main Results and Discussion
- Recoveries of 16 EPA PAHs on sand spikes exceeded 86% for most analytes, including high-boiling dibenzo[a,h]anthracene (mean 101%)
- Real soil samples yielded PAH recoveries of 95–102% in moderately contaminated matrices but dropped to ~17% in clay-rich soils
- PCB recoveries varied from 21% to 50%, reflecting adsorption of higher-boiling congeners
- Chromatograms demonstrated that mass spectrometric modes (extracted-ion and selected-ion monitoring) are essential for resolving trace PAHs and PCBs
- Detection limits were comparable to standard Soxhlet and ultrasonic extraction methods
Benefits and Practical Applications
- Minimal sample preparation: only grinding to <4 mm, no solvent extraction or drying
- Rapid analysis: desorption and transfer completed in approximately 30 minutes
- Small sample requirements (~500 mg) enable efficient screening of limited samples
- Broad boiling-point coverage allows analysis of both low- and high-boiling volatiles in various soil types
- Fully automated workflow enhances throughput and reproducibility
Future Trends and Potential Applications
- Integration with high‐resolution MS for precise compound identification
- Extension to other environmental matrices (sediment, sludge, airborne particulates)
- Development of field‐portable units for on‐site screening
- Refinement of quantitative accuracy via matrix‐matched calibration and internal standards
- Automation of data processing for real‐time reporting and decision support
Conclusion
The combined thermal desorption and cryofocusing GC–MS approach provides a fast, reliable, and semi-quantitative screening method for volatile contaminants in soils. It eliminates lengthy solvent extractions while delivering trace-level detection across a wide boiling-point range with minimal manual intervention.
References
- I. Blankenhorn, D. Meijer and R.J. van Delft, Fresenius Journal of Analytical Chemistry, 343, 497–504 (1992).
- Ministry of Environment decree on PAK analysis, RdErl. III A 5 – 567, 25.3.1988.
- DIONEX application notes on supercritical fluid extraction (1992).
- J. Bundt and R. Stegmann, GIT Spezial Chromatographie, 2/1993, 64–69.
- W. Püttmann, C.B. Eckardt and R.G. Schaefer, Chromatographia, 25, 279–287 (1988).
- W. Püttmann and W. Goßel, Wissenschaft und Umwelt, 3, 123–130 (1988).
- EPA Method 610: Determination of 16 PAHs, 49 Fed. Reg. 209 (1984).
- VDI Guideline 3872 – Thermal Desorption Techniques.
- State Office for Water and Waste Abfallwirtschaft, Method PAK, Nr. 13/1987.
- Sludge Ordinance (AbfKlärV), Annex 1, Bundesgesetzblatt 21/1992.
Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.
Similar PDF
Design, Performance and Applicability of a Multi-Functional Thermodesorption System for Trace Analysis in Capillary GC
1994|Agilent Technologies|Applications
AppNote 1/1994 Design, Performance and Applicability of a Multi-Functional Thermodesorption System for Trace Analysis in Capillary GC Andreas Hoffmann, Ralf Bremer Gerstel GmbH & Co.KG, Eberhard-Gerstel-Platz 1, D-45473 Mülheim an der Ruhr, Germany KEYWORDS Direct Thermal Desorption, Volatiles in Solids…
Key words
abundance, abundancethermodesorption, thermodesorptionlinalool, linaloolcis, cisdesorption, desorptiongerstel, gersteltime, timelimonene, limonenedihydro, dihydrothermal, thermaltds, tdstrapped, trappedpreliminary, preliminarygalaxoide, galaxoideveridoflorol
Comparison of Standard Liquid Extraction and Direct Thermal Desorption GC/MS Techniques for the Analysis of Charcoal Filters used for Indoor Air Purification in a PCB Contaminated Building
1996|Agilent Technologies|Applications
AppNote 2/1996 Comparison of Standard Liquid Extraction and Direct Thermal Desorption GC/MS Techniques for the Analysis of Charcoal Filters used for Indoor Air Purification in a PCB Contaminated Building Andreas Hoffmann Gerstel GmbH & Co.KG, Eberhard-Gerstel-Platz 1, D-45473 Mülheim an…
Key words
desorption, desorptionthermal, thermalgerstel, gerstelfilter, filterlayers, layerspcbs, pcbscontaminated, contaminatedcharcoal, charcoalliquid, liquidindoor, indoorextraction, extractionpcb, pcbclophen, clophenpruzina, pruzinaair
Direct Thermal Analysis of Solids - A Fast Method for the Determination of Halogenated Phenols and Anisols in Cork
1994|Agilent Technologies|Applications
AppNote 2/1994 Direct Thermal Analysis of Solids - A Fast Method for the Determination of Halogenated Phenols and Anisols in Cork Andreas Hoffmann Gerstel GmbH & Co.KG, Eberhard-Gerstel-Platz 1, D-45473 Mülheim an der Ruhr, Germany Wolf Rüdiger Sponholz Forschungsanstalt Geisenheim,…
Key words
cork, corkabundance, abundancecis, cisgrowth, growthrings, ringsgerstel, gerstelyears, yearstds, tdsage, agethermal, thermaldirect, directtime, timegrey, greydesorption, desorptionyoung
Applicability of a New Versatile Temperature Programmed Thermodesorption System in Single and Multi Column Capillary GC/MS
1992|Agilent Technologies|Applications
AppNote 1/1992 Applicability of a New Versatile Temperature Programmed Thermodesorption System in Single and Multi Column Capillary GC/MS Ralf Bremer, Andreas Hoffmann Gerstel GmbH & Co.KG, Eberhard-Gerstel-Platz 1, D-45473 Mülheim an der Ruhr, Germany Jacques A. Rijks Foundation Education and…
Key words
programmed, programmedgerstel, gerstelmethylfuran, methylfurantds, tdsthermodesorption, thermodesorptionversatile, versatiletemperature, temperaturebutandione, butandionedetectorfid, detectorfidapplicability, applicabilitymethylbutanal, methylbutanalenrichment, enrichmentbutenal, butenalheptene, heptenetrimethylbenzenes