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Shimadzu Multi-Dimensional GC/GCMS System - MDGC/GCMS Series

Brochures and specifications | 2013 | ShimadzuInstrumentation
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Shimadzu

Summary

Importance of the Topic


Multi-dimensional gas chromatography (MDGC) coupled with mass spectrometry has emerged as a critical technique for resolving complex mixtures that cannot be fully separated by conventional single-column GC. The method is widely used in petroleum, fragrance, fine chemicals and environmental analysis, where multiple overlapping components demand high selectivity, reproducibility, and throughput.

Objectives and Study Overview


This document presents the features and performance of the Shimadzu MDGC/GCMS series, focusing on a dual-column, multi-Deans switching system designed to improve separation efficiency and retention time stability. Key objectives include demonstrating improved heart-cutting reproducibility, retention time precision, quantitative accuracy and the flexibility of system configuration for a range of matrices.

Methodology


The MDGC/GCMS system uses two capillary columns with different stationary phases. Compounds insufficiently resolved on the primary column are transferred via heart-cutting into a secondary column using a high-precision multi-Deans switching mechanism, controlled by digital flow and pressure controllers.

Used Instrumentation


  • Shimadzu MDGC-2010 switching package
  • Advanced Flow Controller (AFC-2010) and Advanced Pressure Controller (APC)
  • MDGCsolution, GCsolution and GCMSsolution software
  • GCMS, FID, FPD and other detectors
  • Pretreatment systems: AOC-20i autosampler, TD-20 thermal desorption, Turbomatrix HS, AOC-5000 series

Main Results and Discussion


Multi-Deans switching maintained retention time shifts below 0.005 min even after six successive heart cuts, significantly outperforming traditional Deans switching. Deactivation processing of flow paths prevented adsorption and degradation of polar compounds, ensuring sharp peaks and high quantitative reproducibility (CV < 1%). Petroleum oxygenates, essential oil constituents, chiral terpenes and trace impurities were successfully separated and quantified, showcasing applications in gasoline oxygenate profiling (ASTM D4815) and fragrance component resolution.

Benefits and Practical Applications


  • Enhanced separation of complex matrices such as gasoline oxygenates and fine chemicals
  • High reproducibility and quantitative accuracy for trace analysis
  • Flexible system configuration for GC/GCMS, standalone GC or MDGC operation
  • Intuitive software control for rapid method development and multiple heart cuts
  • Reduced maintenance through easy part replacement and deactivated flow paths

Future Trends and Potential Applications


Integration of MDGC with high-resolution mass spectrometry, automated sample introduction and AI-driven method optimization is expected to broaden its use in metabolomics, environmental forensics and advanced quality control. Miniaturization and faster column technologies will further improve throughput.

Conclusion


The Shimadzu MDGC/GCMS system leverages dual-oven design, multi-Deans switching and precision flow control to achieve superior separation, retention stability and quantitative performance. Its modular design and intuitive software make it a versatile platform for diverse analytical challenges.

References


  • ASTM International. Standard Test Method for Determination of MTBE, ETBE, TAME, DIPE, Tertiary Amyl Alcohol and C1 to C4 Alcohols in Gasoline by Gas Chromatography, ASTM D4815-99.
  • Shimadzu Corporation. Multi-Dimensional GC/GCMS System, Document C184-E015C, 2013.

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