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Infrared Spectroscopy Course
More than 2 million students worldwide

Infrared Spectroscopy Course

Master infrared spectroscopy from foundational theory to advanced industrial applications. This course covers FTIR instrumentation, sample preparation, spectral interpretation, quantitative analysis, and hyphenated techniques. Whether you work in pharmaceuticals, polymers, food science, or environmental monitoring, you will gain the practical skills to produce reliable, defensible IR data.

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What you will learn:

You will build a thorough understanding of molecular vibrations, electromagnetic radiation, and the Beer-Lambert law before moving into hands-on FTIR instrument operation and calibration. The course covers every major sample preparation technique, from ATR and KBr pellets to gas cells and thin films. You will develop systematic spectral interpretation skills for organic, inorganic, and polymeric materials. Advanced topics include multivariate chemometrics, hyphenated techniques such as GC-IR and TGA-IR, IR imaging, and near-infrared spectroscopy. Regulatory compliance, method validation, and SOP writing are also addressed to prepare you for real laboratory environments.

How you study in practice Infrared Spectroscopy Course

How you practise Infrared Spectroscopy Course

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Course content

8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Infrared Spectroscopy

  • Lesson 1 • Beer-Lambert Law and Quantitative Basics

    Introduces absorbance, transmittance, and the Beer-Lambert law for quantitative analysis. Provides the mathematical foundation for concentration measurements.

  • Lesson 2 • Molecular Vibrations and IR Activity

    Explains stretching and bending modes and the dipole-moment change requirement for IR activity. Connects molecular symmetry to observable absorption bands.

  • Lesson 3 • Electromagnetic Radiation and the IR Region

    Covers wavelength, frequency, wavenumber, and the IR spectral range (near, mid, far). Establishes the physical basis for all subsequent spectral interpretation.

  • Lesson 4 • Overview of IR Instrumentation Types

    Surveys dispersive, Fourier-transform, and filter-based IR instruments. Orients students to hardware choices before detailed instrument study.

Chapter 2See details

FTIR Instrumentation and Operation

  • Lesson 1 • Instrument Qualification and Calibration

    Covers wavenumber accuracy checks, photometric linearity tests, and resolution verification using reference standards. Ensures data integrity before sample analysis.

  • Lesson 2 • IR Sources, Detectors, and Beam Splitters

    Details common IR sources (globar, Nernst glower), detectors (DTGS, MCT), and beam splitter materials. Guides hardware selection for specific spectral ranges.

  • Lesson 3 • Fourier Transform and Spectral Computation

    Covers the mathematical Fourier transform converting interferograms to spectra and apodization functions. Students understand how software processing affects spectral quality.

  • Lesson 4 • Data Acquisition Parameters and Best Practices

    Teaches scan number, resolution, and aperture selection for optimal signal-to-noise ratio. Connects parameter choices to spectral quality outcomes.

  • Lesson 5 • Michelson Interferometer Principles

    Explains beam splitter, moving mirror, and path-difference generation in the Michelson interferometer. Directly links optical design to interferogram production.

Chapter 3See details

Sample Preparation Techniques

  • Lesson 1 • Choosing the Right Preparation Method

    Provides a decision framework matching sample state, quantity, and analytical goal to preparation technique. Reinforces all prior preparation methods through comparative analysis.

  • Lesson 2 • Liquid and Solution Sample Techniques

    Explains fixed-path-length cells, variable cells, and thin-film casting for liquids. Addresses solvent selection and solvent subtraction procedures.

  • Lesson 3 • Attenuated Total Reflectance Sampling

    Introduces ATR crystal materials, contact pressure, and depth-of-penetration concepts. Positions ATR as the preferred technique for routine and minimal-prep analysis.

  • Lesson 4 • Solid Sample Preparation Methods

    Covers KBr pellet pressing, Nujol mull preparation, and diffuse reflectance techniques for solids. Each method's advantages and artifacts are compared.

  • Lesson 5 • Gas-Phase Sample Handling

    Covers long-path gas cells, vacuum handling, and pressure measurement for gas-phase IR. Connects cell path length to detection sensitivity for trace gases.

Chapter 4See details

Spectral Interpretation: Functional Groups

  • Lesson 1 • The Fingerprint and Functional Group Regions

    Distinguishes the functional group region (4000–1500 cm⁻¹) from the fingerprint region (1500–400 cm⁻¹). Establishes a two-region strategy for systematic interpretation.

  • Lesson 2 • Heteroatom Functional Groups

    Covers O–H, N–H, C–N, C–O, and S–H stretching and bending bands for alcohols, amines, and related groups. Expands interpretation to polar functional groups.

  • Lesson 3 • Hydrocarbons and C–H Stretching Bands

    Covers alkane, alkene, and alkyne C–H stretches and bending modes with characteristic wavenumbers. Builds the first layer of functional group recognition.

  • Lesson 4 • Carbonyl-Containing Functional Groups

    Analyzes C=O stretching frequencies for ketones, aldehydes, esters, carboxylic acids, and amides. Teaches how conjugation and ring strain shift carbonyl frequencies.

  • Lesson 5 • Inorganic and Ionic Species Bands

    Identifies characteristic bands for carbonates, sulfates, phosphates, and metal oxides. Extends interpretation skills beyond organic molecules.

Chapter 5See details

Spectral Processing and Data Quality

  • Lesson 1 • Spectral Subtraction and Difference Spectra

    Teaches scaled spectral subtraction to isolate analyte signals from matrix or solvent contributions. Identifies subtraction artifacts and scaling factor optimization.

  • Lesson 2 • Derivative Spectroscopy

    Applies first and second derivative transformations to resolve overlapping bands and sharpen peaks. Connects derivative order to resolution enhancement and noise amplification.

  • Lesson 3 • Validation of Processed Spectra

    Covers signal-to-noise ratio measurement, peak position reproducibility, and spectral quality metrics. Ensures processed data meets analytical acceptance criteria.

  • Lesson 4 • Baseline Correction Methods

    Covers manual anchor-point, polynomial, and rubber-band baseline correction algorithms. Teaches when each method is appropriate and how to avoid over-correction artifacts.

  • Lesson 5 • Smoothing and Noise Reduction

    Explains Savitzky-Golay smoothing, moving-average filters, and their effect on spectral resolution. Balances noise reduction against peak distortion risk.

Chapter 6See details

Quantitative IR Analysis

  • Lesson 1 • Method Validation for Quantitative IR

    Applies accuracy, precision, linearity, and robustness testing to IR quantitative methods. Aligns validation parameters with analytical regulatory expectations.

  • Lesson 2 • Multivariate Calibration Fundamentals

    Introduces PLS and PCR regression for handling overlapping bands and complex matrices. Explains latent variables and their physical meaning in spectral data.

  • Lesson 3 • Quantitative Analysis of Real Samples

    Applies calibration models to pharmaceutical, food, and polymer samples with matrix complexity. Reinforces model transfer and prediction uncertainty reporting.

  • Lesson 4 • Model Building and Cross-Validation

    Covers training set design, cross-validation strategies, and optimal factor number selection. Prevents overfitting and ensures model generalizability.

  • Lesson 5 • Univariate Calibration and Peak Selection

    Covers single-peak absorbance calibration, standard preparation, and calibration curve construction. Establishes the classical quantitative approach before multivariate methods.

Chapter 7See details

Hyphenated and Advanced IR Techniques

  • Lesson 1 • TGA-IR: Thermogravimetric Analysis Coupling

    Explains evolved gas analysis by coupling TGA effluent to an FTIR gas cell. Identifies decomposition products and thermal degradation pathways.

  • Lesson 2 • IR Imaging and Chemical Mapping

    Introduces focal plane array (FPA) detectors for rapid IR imaging and multivariate image analysis. Produces spatially resolved chemical distribution maps.

  • Lesson 3 • GC-IR: Gas Chromatography Coupling

    Covers light-pipe and matrix-isolation GC-IR interfaces, data acquisition, and Gram-Schmidt reconstruction. Enables identification of GC-separated volatile compounds.

  • Lesson 4 • Surface and Thin-Film IR Techniques

    Covers IRRAS, RAIRS, and grazing-angle ATR for surface and thin-film characterization. Addresses selection rules unique to surface-sensitive IR measurements.

  • Lesson 5 • IR Microscopy and Microspectroscopy

    Covers IR microscope optics, aperture-based and confocal designs, and spatial resolution limits. Enables chemical mapping of heterogeneous samples at the microscale.

Chapter 8See details

Industrial and Applied IR Spectroscopy

  • Lesson 1 • Pharmaceutical Applications

    Covers raw material identification, polymorphism detection, and blend uniformity testing in pharmaceutical manufacturing. Connects IR methods to regulatory quality expectations.

  • Lesson 2 • Process Analytical Technology and At-Line IR

    Integrates IR probes into manufacturing processes for real-time reaction and quality monitoring. Covers fibre-optic probes, immersion probes, and data feedback loops.

  • Lesson 3 • Food and Agricultural Analysis

    Uses IR for fat, protein, moisture, and adulteration analysis in food matrices. Highlights near-IR and mid-IR complementarity for food quality control.

  • Lesson 4 • Polymer Characterization by IR

    Applies IR to polymer identification, copolymer composition, crystallinity, and degradation assessment. Covers spectral databases and reference matching for plastics.

  • Lesson 5 • Environmental and Atmospheric Monitoring

    Applies open-path FTIR and extractive monitoring to measure atmospheric pollutants and stack emissions. Addresses detection limits and regulatory reporting contexts.

Certification

Your valid completion certificate

This course is for you:

  • Lab technician: ready to move beyond routine testing into spectral analysis.

  • Analytical chemist: seeking deeper expertise in vibrational spectroscopy methods.

  • Farmaseutiese gehaltebeheerontleder: wat aan regulatoriese identiteitstoetsvereistes moet voldoen.

  • Materials scientist: characterising polymers, coatings, or surface chemistry by IR.

  • Omgewingswetenskaplike: monitering van atmosferiese besoedelingstowwe deur oop-pad IR-stelsels te gebruik.

  • Chemistry graduate student: building instrumental analysis skills for research work.

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