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Gas Chromatography Course
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Gas Chromatography Course

4

Master gas chromatography from foundational separation theory to advanced method development and troubleshooting. This course covers instrumentation, detectors, sample introduction, column selection, quantitative analysis, and regulatory compliance. Whether you work in environmental, food, petrochemical, or clinical laboratories, you will gain the practical skills to produce accurate, defensible GC results.

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What you will learn:

This course covers every critical aspect of gas chromatography, starting with separation principles and instrumentation and progressing through carrier gas control, injection techniques, column theory, and detector operation. You will learn to design and optimise temperature programmes for complex mixtures, apply calibration strategies, and validate methods to regulatory standards. The curriculum also addresses GC-MS hyphenated techniques, multidimensional GC, sample preparation, and data integrity requirements. By the end, you will be equipped to develop, troubleshoot, and document complete GC methods for real-world analytical challenges.

How you study practically Gas Chromatography Course

How you practise Gas Chromatography Course

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Course content

8 Chapters • 37 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Gas Chromatography

  • Lesson 1 • The Chromatogram and Basic Parameters

    Defines retention time, peak area, peak height, and baseline. Students interpret a real chromatogram and extract quantitative and qualitative information.

  • Lesson 2 • History and Scope of GC

    Traces GC development from early partition theory to modern applications. Contextualises why GC remains a dominant analytical technique across industries.

  • Lesson 3 • Fundamental Separation Principles

    Explains partitioning, volatility, and analyte-stationary phase interactions driving separation. Links thermodynamic concepts to practical retention behaviour.

  • Lesson 4 • Overview of GC Instrumentation

    Introduces the carrier gas supply, injector, column, detector, and data system as an integrated unit. Prepares students to recognise each component's role before detailed study.

Chapter 2See details

Carrier Gases and Flow Control

  • Lesson 1 • Linear Velocity and Optimal Flow

    Applies Van Deemter theory to select optimal linear velocity for a given column and gas. Students calculate and set flow rates from column dimensions.

  • Lesson 2 • Pressure and Flow Regulation

    Covers electronic pressure control, mass flow controllers, and manual regulators. Students learn to set and verify head pressure for consistent linear velocity.

  • Lesson 3 • Carrier Gas Properties and Selection

    Compares helium, hydrogen, and nitrogen in terms of efficiency, safety, and cost. Selection criteria are linked to detector compatibility and column type.

  • Lesson 4 • Gas Purity and Traps

    Identifies contaminants that degrade column performance and detector baselines. Students select and maintain appropriate inline traps for moisture, oxygen, and hydrocarbons.

Chapter 3See details

Sample Introduction Techniques

  • Lesson 1 • Autosampler Operation and Optimisation

    Covers liquid autosampler mechanics, syringe maintenance, and injection sequence programming. Students configure an autosampler run to maximise throughput and reproducibility.

  • Lesson 2 • On-Column and PTV Injection

    Covers direct on-column injection for thermolabile compounds and programmed temperature vaporisation for large-volume injection. Connects technique choice to analyte stability.

  • Lesson 3 • Headspace and SPME Techniques

    Introduces static and dynamic headspace for volatile matrices and solid-phase microextraction for trace enrichment. Students match extraction mode to matrix and target analytes.

  • Lesson 4 • Split and Splitless Injection

    Explains split ratio, liner design, and solvent focusing for volatile analytes. Students optimise split ratio and injection volume to balance sensitivity and column loading.

  • Lesson 5 • Thermal Desorption and Pyrolysis

    Describes thermal desorption tubes for air monitoring and pyrolysis GC for polymer characterisation. Links high-temperature sample introduction to specialised analytical goals.

Chapter 4See details

GC Columns: Selection and Theory

  • Lesson 1 • Column Care and Troubleshooting

    Identifies causes of column degradation including oxygen exposure, water, and high-boiling residues. Students apply remediation steps to restore column performance.

  • Lesson 2 • Column Installation and Conditioning

    Details proper column cutting, ferrule selection, and oven installation to prevent dead volume. Conditioning protocols remove bleed and stabilise baseline before analysis.

  • Lesson 3 • Stationary Phase Chemistry

    Surveys polydimethylsiloxane, polyethylene glycol, and specialty phases by polarity and selectivity. Students match stationary phase to analyte polarity and boiling point range.

  • Lesson 4 • Column Types and Dimensions

    Compares packed and capillary columns and explains how length, inner diameter, and film thickness affect efficiency and capacity. Guides column selection for specific applications.

  • Lesson 5 • Plate Theory and Band Broadening

    Applies theoretical plate number, height equivalent to a theoretical plate, and Van Deemter terms to column performance. Students calculate efficiency from chromatographic data.

Chapter 5See details

GC Detectors: Principles and Operation

  • Lesson 1 • Flame Ionisation Detector

    Explains hydrogen-air flame ionisation, response factors, and linear dynamic range. FID is positioned as the universal hydrocarbon detector and calibration reference.

  • Lesson 2 • Electron Capture and NPD Detectors

    Describes ECD selectivity for halogenated and electron-rich compounds and NPD response to nitrogen and phosphorus. Students apply these detectors to pesticide and environmental analysis.

  • Lesson 3 • Thermal Conductivity Detector

    Covers filament-based thermal conductivity measurement and carrier gas selection impact. TCD is presented as a universal, non-destructive detector for permanent gases.

  • Lesson 4 • Detector Maintenance and Performance Checks

    Covers routine cleaning, sensitivity verification, and noise diagnostics for all major detectors. Students perform detector performance tests and interpret results against acceptance criteria.

  • Lesson 5 • Flame Photometric and PID Detectors

    Explains FPD sulphur and phosphorus emission modes and PID ionisation potential thresholds. Students select between these detectors for sulphur compounds and volatile organics.

Chapter 6See details

Oven Temperature Programming

  • Lesson 1 • Designing Temperature Programmes

    Covers initial hold, ramp rate, and final hold parameters and their effect on resolution and run time. Students iteratively optimise a temperature programme for a target mixture.

  • Lesson 2 • Cryogenic and Sub-Ambient Trapping

    Introduces liquid nitrogen and CO2 cooling for trapping highly volatile analytes at column head. Students configure cryogenic focusing for trace-level volatile analysis.

  • Lesson 3 • Equilibration and Reproducibility

    Addresses oven equilibration time, cool-down rates, and their impact on retention time reproducibility. Students set equilibration parameters to meet method precision requirements.

  • Lesson 4 • Isothermal GC Fundamentals

    Defines isothermal operation and its advantages for simple, narrow-boiling-range samples. Students predict retention behaviour and resolution changes with oven temperature.

Chapter 7See details

Qualitative and Quantitative Analysis

  • Lesson 1 • Compound Identification Methods

    Uses retention indices, retention time matching, and spectral library comparison for identification. Students apply Kovats indices to confirm analyte identity across different columns.

  • Lesson 2 • Method Validation Fundamentals

    Defines linearity, accuracy, precision, LOD, LOQ, and specificity as core validation parameters. Students design a validation experiment and interpret results against acceptance criteria.

  • Lesson 3 • Calibration Strategies

    Compares external standard, internal standard, and standard addition calibration for accuracy and matrix effects. Students select and implement the appropriate strategy for a given method.

  • Lesson 4 • Uncertainty and Statistical Evaluation

    Introduces measurement uncertainty budgets, outlier testing, and control chart interpretation. Students calculate combined uncertainty for a GC result and assess fitness for purpose.

  • Lesson 5 • Peak Integration and Data Processing

    Covers integration algorithms, baseline correction, and peak deconvolution for overlapping peaks. Students set integration parameters to minimise systematic error in peak area measurement.

Chapter 8See details

Method Development and Troubleshooting

  • Lesson 1 • Systematic Method Development Workflow

    Presents a structured approach from defining analytical goals to initial method draft. Students translate sample type, analyte list, and performance requirements into method parameters.

  • Lesson 2 • Preventive Maintenance Scheduling

    Establishes daily, weekly, and periodic maintenance tasks to sustain instrument performance. Students create a maintenance log and schedule aligned with method requirements.

  • Lesson 3 • Diagnosing Common GC Problems

    Provides a systematic diagnostic framework for peak shape, retention time, and sensitivity issues. Students trace symptoms to root causes using a structured troubleshooting decision tree.

  • Lesson 4 • Method Optimisation Strategies

    Applies one-variable-at-a-time and design-of-experiments approaches to optimise resolution and speed. Students use response surface methodology to find robust operating conditions.

  • Lesson 5 • Method Transfer and Documentation

    Covers method transfer protocols between instruments and laboratories, including equivalency testing. Students prepare complete method documentation meeting regulatory submission standards.

Certification

Your valid completion certificate

This course is for you:

  • Laboratory Technician: wants to understand the science behind daily GC routines.

  • Environmental Chemist: needs to master compliance-grade methods for regulated sample analysis.

  • Food Safety Analyst: seeks confidence in selecting columns and detectors for complex matrices.

  • Chemistry Graduate Student: building hands-on instrumental skills beyond classroom theory.

  • Career Changer: transitioning into analytical science from a related scientific background.

  • Quality Control Scientist: aiming to write and defend validated methods for regulatory audits.

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