GC×GC-QTOF determination of age markers in diesel oil
Applications | 2016 | ZOEX/JSBInstrumentation
The chemical composition of diesel oil evolves over time through oxidative and microbial degradation. Monitoring specific hydrocarbon markers such as n-heptadecane (n-C17) and pristane enables estimation of the fuel’s age, critical for environmental forensics, spill remediation, and quality control.
This study evaluates comprehensive two-dimensional gas chromatography coupled to quadrupole time-of-flight mass spectrometry (GC×GC-QTOF) to separate, identify, and quantify diesel aging markers with improved accuracy over conventional one-dimensional GC methods.
Samples consisted of fresh and one-year-old commercial diesel fuel injected directly without pre-treatment.
The GC×GC modulation generated enhanced peak capacity, while high-accuracy mass measurements ensured confident compound identification.
In 1D-GC, n-C17 and pristane co-elute within the broad diesel matrix hump, hindering reliable quantification. GC×GC fully resolved these linear and branched alkanes from cyclic, unsaturated, and aromatic hydrocarbons. Cleaner spectra improved library match factors. Total ion chromatogram (TIC) volumes extracted for n-C17 and pristane yielded age-dependent ratios of 1.14 for the one-year-old sample versus 1.35 for fresh fuel, demonstrating enhanced sensitivity and precision.
The GC×GC-QTOF approach delivers:
Emerging cryogen-free modulators and faster high-resolution MS detectors will further streamline GC×GC workflows. Integration with automated data analytics and field-deployable platforms could enable real-time monitoring of fuel degradation and contaminant aging in soils, waters, and industrial QA/QC settings. Coupling with machine learning may refine predictive models for environmental forensics.
GC×GC-QTOF significantly enhances the separation and quantification of key diesel oil aging markers, delivering more reliable age estimation than conventional GC approaches and broadening applications in environmental analysis and quality assurance.
GCxGC, GC/MSD, GC/MS/MS, GC/HRMS, GC/Q-TOF
IndustriesEnergy & Chemicals
ManufacturerAgilent Technologies, ZOEX/JSB
Summary
Importance of the Topic
The chemical composition of diesel oil evolves over time through oxidative and microbial degradation. Monitoring specific hydrocarbon markers such as n-heptadecane (n-C17) and pristane enables estimation of the fuel’s age, critical for environmental forensics, spill remediation, and quality control.
Objectives and Overview
This study evaluates comprehensive two-dimensional gas chromatography coupled to quadrupole time-of-flight mass spectrometry (GC×GC-QTOF) to separate, identify, and quantify diesel aging markers with improved accuracy over conventional one-dimensional GC methods.
Methodology and Instrumentation
Samples consisted of fresh and one-year-old commercial diesel fuel injected directly without pre-treatment.
- Agilent 7890B GC with Zoex ZX2 cryogen-free thermal modulator for GC×GC
- Agilent 7200B QTOF mass spectrometer for accurate mass detection
- GC Image High Resolution software for 2D chromatogram visualization and quantitative TIC integration
The GC×GC modulation generated enhanced peak capacity, while high-accuracy mass measurements ensured confident compound identification.
Results and Discussion
In 1D-GC, n-C17 and pristane co-elute within the broad diesel matrix hump, hindering reliable quantification. GC×GC fully resolved these linear and branched alkanes from cyclic, unsaturated, and aromatic hydrocarbons. Cleaner spectra improved library match factors. Total ion chromatogram (TIC) volumes extracted for n-C17 and pristane yielded age-dependent ratios of 1.14 for the one-year-old sample versus 1.35 for fresh fuel, demonstrating enhanced sensitivity and precision.
Benefits and Practical Applications
The GC×GC-QTOF approach delivers:
- Superior chromatographic resolution in complex petrochemical samples
- Accurate n-C17/pristane ratio determination for environmental age profiling
- Potential adaptation to lower-resolution MS instruments due to chromatographic purity
Future Trends and Potential Applications
Emerging cryogen-free modulators and faster high-resolution MS detectors will further streamline GC×GC workflows. Integration with automated data analytics and field-deployable platforms could enable real-time monitoring of fuel degradation and contaminant aging in soils, waters, and industrial QA/QC settings. Coupling with machine learning may refine predictive models for environmental forensics.
Conclusion
GC×GC-QTOF significantly enhances the separation and quantification of key diesel oil aging markers, delivering more reliable age estimation than conventional GC approaches and broadening applications in environmental analysis and quality assurance.
Reference
- Christensen L.B., Larsen T.H. Groundwater Monitoring & Remediation 13 (1993) 142–149.
Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.
Similar PDF
Mass-based colorization for qualitative group analysis in GC×GC-MS
2016|Agilent Technologies|Applications
JSB is an authorised partner of JSB-DP005 Ma s s-ba sed sed co loriz ation f o r q uali tat ive group ana lysis i n GC ×GC-MS Author application note: Daniela Peroni, JSB © 2016 Introduction GC×GC-MS, with…
Key words
sed, sedjsb, jsbloriz, lorizuali, ualicolorization, colorizationstrasse, strassemasses, massesplanck, plancktat, tative, iveation, ationana, analysis, lysisauthorised, authorisedinteresting
Fingerprint analysis of tea leaves by HS-SPME-GC×GC-QTOF
2016|Agilent Technologies|Applications
JSB is an authorised partner of Fingerprint analysis of tea l eaves by H S-SPME-GC×GC -QTOF. Author application note: Daniela Peroni, JSB © 2016 Introduction Comprehensive two-dimensional gas chromatography (GC×GC) provides very high resolution power and unmatched peak capacity. In…
Key words
jsb, jsbvery, veryothers, otherscinammaldehyde, cinammaldehydesimilarity, similarityblob, blobdifferences, differenceswise, wisecomprehensive, comprehensivetable, tableauthorised, authorisedfingerprinting, fingerprintingsimilarities, similaritiesbenzoate, benzoatehundred
Detection of Oxygenated Components in Diesel by GCxGC x HR-TOFMS
|Agilent Technologies|Applications
JSB is an authorised partner of Detection of Oxygenated Components in Diesel by GCxGC x HR-TOFMS #G02 Introduction Small amounts of oxygenates are often added to diesel to reduce…
Key words
gcxgc, gcxgcoxygenates, oxygenatesdiesel, dieselsupplier, supplierzoex, zoexjsb, jsbtofms, tofmscarbitol, carbitolflight, flightmmu, mmumass, masssec, seceindhoven, eindhovensoftware, softwareoxygenated
GC×GC-QTOF: a comprehensive approach to tackle identifification challenges in complex food matrices
2016|Agilent Technologies|Applications
JSB is an authorised partner of GC×GC-QTOF: a comprehensive approach to tackle identification challenges in complex food matrices Author application note: Daniela Peroni, JSB © 2016 Introduction Comprehensive two-dimensional gas chromatography coupled to High Resolution Mass Spectrometry (GC×GC-HRMS) is an…
Key words
jsb, jsbcomplex, complexvolatiles, volatileshrms, hrmsspme, spmestrasse, strassemasses, massesaccurate, accurateplanck, planckmass, massresolution, resolutionhigh, highsignificantly, significantlyauthorised, authorisedchromatograms