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Designed to deliver more - Thermo Scientific TriPlus 500 Gas Chromatography Headspace Autosampler

Brochures and specifications | 2019 | Thermo Fisher ScientificInstrumentation
HeadSpace
Industries
Manufacturer
Thermo Fisher Scientific

Summary

Importance of the Topic


The analysis of volatile organic compounds by static headspace gas chromatography is fundamental across pharmaceutical, food safety, environmental, and forensic laboratories. It offers reliable, robust sampling of headspace vapors without complex sample preparation, ensuring high data quality and repeatable results for regulatory compliance and routine operations.

Objectives and Overview


This article reviews the design and performance of a next‐generation static headspace autosampler. Key aims include enhancing unattended operation, improving sample throughput, and delivering superior reliability for volatiles determination using valve‐and‐loop headspace injection. Application examples in food packaging, environmental water testing, and forensic blood alcohol analysis illustrate its versatility.

Methodology and Instrumentation


A proprietary pneumatic circuit controls vial pressurization and loop filling, minimizing variability in sampled volume. An innovative Quick Spin Shaking device accelerates liquid–gas equilibration with three agitation levels. Direct coupling of the autosampler valve manifold to the GC column shortens transfer paths and preserves sample integrity. Automated leak checks precede each injection, while multiple headspace extraction (MHE) and injection (MHI) workflows enable absolute quantitation and signal enrichment in complex or low‐level samples.
  • TriPlus 500 GC Headspace Autosampler
  • Thermo Scientific TRACE 1300 Gas Chromatograph
  • Chromeleon Chromatography Data System software
  • ISQ 7000 single quadrupole mass spectrometer and FID detectors
  • Microfluidic 3‐port connector
  • TraceGOLD TG‐ALC1 and TG‐ALC2 capillary columns

Main Results and Discussion


Repeatability tests of 120 consecutive injections of 50 ppm ethanol showed overall RSD of 0.7%. Carryover following high‐concentration 2‐butanol injections was below 0.0003%. MHE calibration for residual solvents in food packaging yielded correlation coefficients (R²) > 0.997 and consistent recoveries. In environmental water spiked with gasoline range organics, method detection limits were in the low ppb range with recoveries around 105% and RSDs below 4%. For blood alcohol screening, total run times were under 3 minutes, calibration linearity exceeded R² = 0.999 over 0.01–0.20 g/dL, and ethanol area repeatability was below 1%. Dual FID or GC‐MS configurations facilitated simultaneous quantitation and confirmation, enhancing confidence in compound identification.

Benefits and Practical Applications


  • High throughput: up to 240 samples per run supports extended unattended sequences.
  • Flexible method support: MHE, MHI, and leak check ensure accuracy in diverse matrices.
  • Compact modular design: user‐exchangeable trays and direct column connection save bench space and maintenance time.
  • Data integrity: integrated barcode reading and comprehensive audit trails in Chromeleon CDS streamline sample tracking and regulatory compliance.
  • Versatile detection: dual FID and MS configurations enable simultaneous quantitation and confirmation of known and unknown analytes.

Future Trends and Applications


Ongoing advances are expected in automated sample preparation integration, high-resolution mass spectrometry coupling, and expansion of static headspace to emerging analytes such as semi-volatiles and micropollutants. Improvements in instrument connectivity, real-time data analytics, and machine learning–driven method optimization will further enhance laboratory efficiency and decision support.

Conclusion


The described static headspace autosampler platform combines innovative pneumatic control, rapid agitation, and direct column interfacing to deliver unmatched repeatability, low carryover, and high throughput. Its modular design and broad application scope make it an indispensable tool for routine volatiles analysis in regulated and high-capacity laboratories.

Reference


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