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Sulfur Analyzer Nexis GC-2030PFPD1 GC-2014PFPD1

Applications | 2017 | ShimadzuInstrumentation
GC
Industries
Food & Agriculture
Manufacturer
Shimadzu

Summary

Significance of the Topic


Monitoring sulfur compounds in gaseous streams is critical for ensuring environmental compliance, protecting downstream catalysts, and maintaining product quality in natural gas, refinery, and process gases. Trace-level detection of hydrogen sulfide, mercaptans, and other sulfur species helps prevent corrosion, meet regulatory standards, and safeguard human health.

Objectives and Study Overview


This study describes a gas chromatographic method using a pulsed flame photometric detector (PFPD) for quantifying key sulfur compounds in air or gas samples. The goals are to establish calibration procedures, demonstrate the system configuration, and evaluate detection limits and selectivity for compounds such as H₂S, COS, mercaptans, and carbon disulfide.

Methodology and Instrumentation


Samples are introduced via an inert sample loop and inlet to prevent adsorption of sulfur analytes. The system employs a single multiport valve, a capillary inlet, and a capillary column connected to a PFPD.
  • Instrument: Nexis GC-2030PFPD1 (also compatible with GC-2014PFPD1)
  • Detector: Pulsed Flame Photometric Detector optimized for sulfur selectivity
  • Column: Capillary column suited for volatile sulfur compounds
  • Software: LabSolutions GC workstation for data acquisition and analysis
  • Calibration: Standard sulfur gas or permeation source over a 0.05–100 ppmv range

Key Results and Discussion


The method achieved a linear response for eight sulfur compounds (H₂S, COS, MeSH, EtSH, DMS, CS₂, PrSH, BuSH) between 0.05 and 100 ppmv. Typical chromatograms show well-resolved peaks:
  • H₂S elutes earliest, followed by COS and methyl mercaptan
  • Larger mercaptans and dimethyl sulfide elute later with baseline separation
  • Detection limits remain below 0.05 ppmv, depending on sample matrix
System inertness prevented analyte loss, and the PFPD provided high sulfur specificity, minimizing interference from non-sulfur species.

Benefits and Practical Applications


  • High selectivity and sensitivity for a broad range of sulfur compounds
  • Wide dynamic range suitable for trace-level to percent-level analysis
  • Robust inert flow path reduces analyte adsorption and carryover
  • Applicable to refinery gas, natural gas, process gas, and gaseous fuel monitoring
  • Compliance with ASTM D6228 for regulatory and quality control laboratories

Future Trends and Potential Applications


Advancements may include coupling PFPD with mass spectrometry for enhanced structural identification, development of miniaturized or portable GC systems for field use, and integration into continuous online monitoring platforms for real-time sulfur profiling. Emerging interest in ultra-trace detection and novel sulfur species will drive further method optimization.

Conclusion


The described GC-PFPD method offers a reliable, sensitive, and selective approach for quantifying sulfur compounds in gaseous samples. Its compatibility with standard calibration sources and compliance with ASTM protocols make it a valuable tool for both research and industrial quality assurance.

References


  • Shimadzu Corporation. System Gas Chromatograph Sulfur Analyzer Nexis GC-2030PFPD1 / GC-2014PFPD1 Application Note SGC-ADS-0009A, First Edition November 2017.
  • ASTM International. ASTM D6228-Standard Test Method for Determination of Sulfur Compounds in Natural Gas by Gas Chromatography with Pulsed Flame Photometric Detector.

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