
Atomic Absorption Spectrometry Course
Master Atomic Absorption Spectrometry from foundational physics to advanced real-world applications. This course covers every major atomization technique, instrument component, and quality control strategy you need to produce accurate, defensible elemental data. Whether you work in environmental, clinical, or industrial analysis, you will gain the technical depth to operate, troubleshoot, and validate AAS methods with confidence.
What you will learn:
You will develop a solid understanding of atomic structure, the Beer‑Lambert law, and the full range of AAS instrumentation, including radiation sources, monochromators and background correction. The course covers flame atomization, graphite‑furnace AAS, hydride generation, and cold‑vapor mercury determination in practical detail. You will learn to design temperature programs, prepare samples by acid digestion and matrix matching, and build calibration curves that meet regulatory requirements. Quality control, method validation, uncertainty estimation, and ISO 17025 compliance are addressed. Advanced modules expand your skills to biological and industrial matrices and emerging technologies such as high‑resolution continuum‑source AAS and flow‑injection analysis.
How you study in practice Atomic Absorption Spectrometry Course
How you practice Atomic Absorption Spectrometry Course
For companies looking to train their teams
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course Content
8 Chapters • 37 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Atomic Spectrometry
Foundations of Atomic Spectrometry
Lesson 1 • Overview of Atomic Spectrometry Techniques
Compares AAS with atomic emission and fluorescence spectrometry. Positions AAS within the broader analytical toolkit and clarifies its unique strengths.
Lesson 2 • Electromagnetic Radiation Principles
Examines wavelength, frequency, and photon energy relationships across the spectrum. Connects radiation properties to the UV-visible range used in AAS.
Lesson 3 • Atomic Structure and Energy Levels
Covers electron configuration, ground states, and quantized energy transitions in atoms. Establishes the quantum mechanical basis required for all subsequent AAS concepts.
Lesson 4 • Beer-Lambert Law and Absorbance
Derives the Beer-Lambert law and defines absorbance, transmittance, and molar absorptivity. Provides the quantitative foundation for all AAS calibration and measurement.
Chapter 2HideHide detailsSee detailsInstrumentation and System Components
Instrumentation and System Components
Lesson 1 • Monochromators and Wavelength Selection
Covers diffraction gratings, slits, and optical geometry used to isolate analytical wavelengths. Links spectral bandwidth selection to sensitivity and spectral interference control.
Lesson 2 • Detectors and Signal Processing
Describes photomultiplier tubes and solid-state detectors used in modern AAS systems. Connects detector response characteristics to signal-to-noise ratio and detection limits.
Lesson 3 • Background Correction Systems
Introduces deuterium arc, Zeeman effect, and Smith-Hieftje background correction methods. Explains when each method is appropriate for minimizing non-specific absorption.
Lesson 4 • Single-Beam and Double-Beam Optics
Contrasts single-beam and double-beam optical configurations in terms of drift compensation and throughput. Guides instrument selection based on analytical requirements.
Lesson 5 • Radiation Sources for AAS
Examines hollow cathode lamps and electrodeless discharge lamps as primary radiation sources. Explains how source characteristics directly affect sensitivity and spectral resolution.
Chapter 3HideHide detailsSee detailsFlame Atomization Techniques
Flame Atomization Techniques
Lesson 1 • Flame Types and Combustion Chemistry
Compares air-acetylene and nitrous oxide-acetylene flames in terms of temperature and reducing power. Connects flame chemistry to atomization efficiency for specific elements.
Lesson 2 • Burner Head Optimization
Covers burner head geometry, slot length, and height adjustment for maximum absorbance signal. Demonstrates how burner alignment affects sensitivity and background levels.
Lesson 3 • Nebulizers and Spray Chamber Design
Explains pneumatic and ultrasonic nebulizer operation and spray chamber aerosol conditioning. Links nebulizer efficiency to analytical sensitivity and precision.
Lesson 4 • Flame Safety and Hazard Management
Identifies flammable gas hazards, flashback risks, and ventilation requirements for flame AAS. Establishes safe operating procedures that protect personnel and equipment.
Chapter 4HideHide detailsSee detailsGraphite Furnace Atomization
Graphite Furnace Atomization
Lesson 1 • Temperature Program Development
Guides construction of drying, ashing, atomization, and clean-out temperature steps. Optimizing each stage maximizes analyte signal while minimizing matrix interferences.
Lesson 2 • Interferences Specific to GFAAS
Identifies spectral, chemical, and physical interferences unique to graphite furnace measurements. Provides strategies including modifier use and platform atomization to overcome them.
Lesson 3 • Chemical Modifiers in GFAAS
Explains how matrix modifiers stabilize analytes during ashing to allow higher ashing temperatures. Covers palladium, magnesium nitrate, and mixed modifier applications.
Lesson 4 • Characteristic Mass and Detection Limits
Defines characteristic mass as a furnace performance metric and compares it to flame AAS detection limits. Enables students to evaluate instrument performance objectively.
Lesson 5 • Graphite Furnace Design and Operation
Describes tube geometry, contact electrodes, and inert gas purge systems in graphite furnaces. Establishes how furnace design governs atomization efficiency and tube lifetime.
Chapter 5HideHide detailsSee detailsHydride Generation and Cold Vapor AAS
Hydride Generation and Cold Vapor AAS
Lesson 1 • HG-AAS Instrumentation and Setup
Describes flow injection manifolds, gas-liquid separators, and heated quartz tube atomizers used in HG-AAS. Connects each component to system sensitivity and precision.
Lesson 2 • Hydride Generation Principles
Explains the chemical reduction of hydride-forming elements to volatile hydrides using borohydride. Covers the elements amenable to this technique and their analytical advantages.
Lesson 3 • Cold Vapor Mercury Determination
Covers stannous chloride and sodium borohydride reduction of mercury to atomic vapor at room temperature. Explains why mercury requires a dedicated cold vapor approach.
Lesson 4 • Interferences in HG and CV Systems
Identifies transition metal and hydride-forming element interferences that suppress hydride generation. Provides masking agent and oxidation state control strategies.
Chapter 6HideHide detailsSee detailsSample Preparation and Matrix Management
Sample Preparation and Matrix Management
Lesson 1 • Acid Digestion Methods
Compares open-vessel hot-plate digestion with closed-vessel microwave digestion for complete sample dissolution. Guides acid selection based on matrix composition and target elements.
Lesson 2 • Contamination Control and Blank Management
Identifies contamination sources at trace and ultratrace levels and establishes blank subtraction protocols. Protects data integrity in low-level environmental and biological analyses.
Lesson 3 • Dilution, Filtration, and Preservation
Covers volumetric dilution, membrane filtration, and acidification for sample stability. Ensures analyte integrity from collection through measurement.
Lesson 4 • Matrix Matching and Standard Addition
Explains matrix matching and standard addition as strategies to compensate for matrix-induced signal suppression or enhancement. Guides method selection based on matrix complexity.
Lesson 5 • Dry Ashing and Fusion Techniques
Explains muffle furnace dry ashing and flux fusion for refractory and organic-rich matrices. Identifies elements lost during ashing and mitigation strategies.
Chapter 7HideHide detailsSee detailsCalibration, Quality Control, and Validation
Calibration, Quality Control, and Validation
Lesson 1 • Method Validation Parameters
Evaluates accuracy, precision, linearity, selectivity, and robustness as core validation parameters. Provides a structured validation protocol applicable to regulatory and research contexts.
Lesson 2 • Quality Control Sample Types
Defines calibration verification standards, continuing calibration checks, and certified reference materials. Explains how each QC type monitors different aspects of measurement accuracy.
Lesson 3 • Method Detection and Quantitation Limits
Derives method detection limits and quantitation limits from replicate low-level measurements. Connects these metrics to regulatory reporting thresholds and fitness for purpose.
Lesson 4 • Calibration Curve Construction
Covers standard preparation, linear regression, and calibration range selection for AAS methods. Establishes the quantitative link between absorbance and analyte concentration.
Lesson 5 • Uncertainty Estimation in AAS
Identifies and quantifies uncertainty contributions from sampling, preparation, calibration, and measurement. Combines uncertainty components to report a final expanded uncertainty.
Chapter 8HideHide detailsSee detailsAdvanced Applications and Method Development
Advanced Applications and Method Development
Lesson 1 • Troubleshooting and Method Optimization
Provides a systematic diagnostic framework for resolving sensitivity loss, high background, and poor precision. Builds independent problem-solving skills for routine and complex AAS methods.
Lesson 2 • Environmental Sample Analysis
Applies AAS to water, soil, sediment, and air particulate matrices for trace metal determination. Addresses matrix-specific preparation and regulatory reporting requirements.
Lesson 3 • Biological and Clinical Sample Analysis
Covers blood, urine, tissue, and food matrices for essential and toxic element determination. Highlights protein precipitation, dilution, and matrix modifier strategies for biological samples.
Lesson 4 • Speciation and Hyphenated Techniques
Introduces chromatographic separation coupled to AAS for element speciation analysis. Covers arsenic, chromium, and mercury speciation as key analytical applications.
Lesson 5 • Industrial and Materials Analysis
Applies AAS to metals, alloys, catalysts, and industrial process streams. Addresses high-matrix dissolution and dilution strategies for concentrated metal samples.
Your valid completion certificate
This course is for you:
Environmental chemist: needs reliable trace metal data for regulatory compliance reporting.
Laboratory technician: operates AAS daily but wants deeper understanding of the instrument.
Food safety analyst: determines toxic and essential elements in complex biological matrices.
Chemistry graduate: building practical analytical skills before entering an industrial lab role.
Quality control officer: responsible for method validation and accreditation documentation in a testing lab.
Career changer: moving from a related science field into elemental analysis professionally.
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