
Mineral Chemistry Course
Master the chemistry behind every mineral on Earth, from atomic bonding and crystal structure to thermodynamic stability and geochemical behaviour. This course gives geoscientists, mineralogists, and researchers the rigorous chemical foundation needed to analyse minerals across igneous, metamorphic, sedimentary, and industrial contexts. You will finish equipped to apply cutting-edge analytical methods and interpret real-world compositional data with confidence.
What you will learn:
This course covers the complete spectrum of mineral chemistry, starting with atomic structure, chemical bonding, and the periodic table as they apply to natural minerals. You will work through silicate and non-silicate mineralogy, thermodynamic stability models, and geochemical element partitioning. Analytical techniques including X-ray diffraction, electron microprobe analysis, laser ablation ICP-MS, and isotope ratio methods are covered in depth. Applied topics include ore deposit evaluation, environmental mineralogy, metamorphic petrology, and industrial mineral applications. Supplementary modules address computational modelling, isotope geochemistry, and emerging frontiers such as nanomineralogy and machine learning in mineral chemistry.
How you study in practice Mineral Chemistry Course
How you practise Mineral Chemistry Course
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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 • 35 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Mineral Chemistry
Foundations of Mineral Chemistry
Lesson 1 • Major Rock-Forming Elements
Identifies the eight most abundant crustal elements and their roles in mineral formation. Provides the compositional framework for silicate and oxide mineralogy.
Lesson 2 • Atomic Structure and the Periodic Table
Covers electron configuration, atomic number, and periodic trends relevant to mineral-forming elements. Establishes the chemical basis for understanding mineral composition.
Lesson 3 • Mineral Chemical Formulas
Teaches how to read, write, and interpret empirical and structural chemical formulas for minerals. Connects formula notation to stoichiometry and compositional variability.
Lesson 4 • Chemical Bonding in Minerals
Examines ionic, covalent, metallic, and van der Waals bonds as they occur in natural minerals. Links bond type to physical and chemical mineral properties.
Chapter 2HideHide detailsSee detailsCrystal Chemistry and Structure
Crystal Chemistry and Structure
Lesson 1 • Isomorphism and Polymorphism
Distinguishes isomorphous substitution from polymorphic transformations in minerals. Explains how pressure and temperature drive structural phase changes.
Lesson 2 • Crystal Lattices and Unit Cells
Introduces the seven crystal systems, Bravais lattices, and unit cell parameters. Provides the geometric framework for interpreting X-ray diffraction data.
Lesson 3 • Ionic Radii and Coordination
Covers ionic radius ratios and their control over coordination polyhedra in crystal structures. Directly links atomic size to structural geometry in minerals.
Lesson 4 • Defects and Impurities in Crystals
Examines point defects, dislocations, and trace-element incorporation in mineral lattices. Connects crystal imperfections to colour, luminescence, and diffusion behaviour.
Chapter 3HideHide detailsSee detailsSilicate Mineralogy and Chemistry
Silicate Mineralogy and Chemistry
Lesson 1 • Silicate Structural Framework
Presents the SiO4 tetrahedron as the fundamental silicate unit and its polymerisation modes. Establishes the basis for classifying all silicate mineral groups.
Lesson 2 • Chain and Ring Silicates
Examines pyroxene, amphibole, and cyclosilicate structures and their compositional ranges. Highlights the role of OH groups and chain width in amphibole chemistry.
Lesson 3 • Sheet and Framework Silicates
Analyses micas, clay minerals, feldspars, and quartz as the most abundant crustal silicates. Connects layer charge and interlayer cations to clay mineral swelling behaviour.
Lesson 4 • Nesosilicates and Sorosilicates
Covers isolated and double-tetrahedra silicates including olivine, garnet, and epidote groups. Relates structural simplicity to high density and stability at depth.
Chapter 4HideHide detailsSee detailsNon-Silicate Mineral Chemistry
Non-Silicate Mineral Chemistry
Lesson 1 • Sulphates, Phosphates, and Halides
Covers gypsum, barite, apatite, and fluorite as representatives of evaporite and phosphate systems. Highlights the role of these minerals in nutrient cycling and industrial applications.
Lesson 2 • Carbonate Mineral Chemistry
Examines calcite, dolomite, aragonite, and siderite with their cation substitution patterns. Connects carbonate stability to pH, temperature, and diagenetic environments.
Lesson 3 • Sulphide and Sulphosalt Chemistry
Analyses pyrite, chalcopyrite, galena, and sphalerite as economically critical sulphide minerals. Relates metal-sulphur bonding to ore-forming processes and geochemical cycling.
Lesson 4 • Oxide and Hydroxide Minerals
Covers spinel, corundum, hematite, and goethite groups with emphasis on cation site occupancy. Links oxide chemistry to ore deposit formation and magnetic properties.
Chapter 5HideHide detailsSee detailsThermodynamics of Mineral Stability
Thermodynamics of Mineral Stability
Lesson 1 • Activity-Composition Relationships
Covers ideal and non-ideal solid solution models and their effect on mineral stability. Links activity coefficients to compositional data from mineral analyses.
Lesson 2 • Thermodynamic Fundamentals for Minerals
Introduces enthalpy, entropy, Gibbs free energy, and chemical potential as applied to minerals. Provides the quantitative basis for predicting mineral stability under varying conditions.
Lesson 3 • Pressure-Temperature Phase Diagrams
Constructs and reads P-T diagrams for key mineral reactions in metamorphic and igneous systems. Connects reaction boundaries to geothermal gradients and tectonic settings.
Lesson 4 • Mineral Solubility and Aqueous Equilibria
Examines solubility products, speciation, and saturation indices for minerals in aqueous systems. Applies equilibrium constants to predict mineral precipitation and dissolution.
Lesson 5 • Phase Rule and Mineral Assemblages
Applies Gibbs phase rule to determine degrees of freedom in mineral systems. Enables prediction of coexisting mineral assemblages at equilibrium.
Chapter 6HideHide detailsSee detailsGeochemical Behaviour of Elements in Minerals
Geochemical Behaviour of Elements in Minerals
Lesson 1 • Redox Chemistry in Mineral Systems
Examines oxidation states of Fe, Mn, S, and other multivalent elements in minerals. Links oxygen fugacity to mineral assemblages and ore deposit types.
Lesson 2 • Trace Element Partitioning
Covers Nernst partition coefficients and lattice strain models for trace element incorporation. Enables quantitative modelling of magmatic differentiation and mineral growth.
Lesson 3 • Goldschmidt Classification of Elements
Classifies elements as lithophile, siderophile, chalcophile, or atmophile based on bonding affinity. Predicts which minerals concentrate specific elements in igneous and metamorphic systems.
Lesson 4 • Fluid-Mineral Interaction Chemistry
Analyses hydrothermal alteration, metasomatism, and element mobility driven by fluid-rock reactions. Connects fluid chemistry to secondary mineral assemblages and ore-forming systems.
Chapter 7HideHide detailsSee detailsAnalytical Methods in Mineral Chemistry
Analytical Methods in Mineral Chemistry
Lesson 1 • Electron Microprobe Analysis
Teaches wavelength-dispersive and energy-dispersive spectrometry for in-situ mineral analysis. Addresses matrix corrections, detection limits, and quantitative oxide data reduction.
Lesson 2 • Laser Ablation ICP-MS for Trace Elements
Explains laser ablation sampling, ICP-MS detection, and data reduction for trace element analysis. Enables quantification of REE, HFSE, and other trace elements at ppm to ppb levels.
Lesson 3 • Spectroscopic Methods
Surveys Raman, FTIR, Mössbauer, and UV-Vis spectroscopy as applied to mineral characterisation. Links spectral features to bond vibrations, oxidation states, and structural order.
Lesson 4 • Isotope Ratio Analysis
Introduces stable and radiogenic isotope systems measured in minerals for geochronology and tracing. Connects isotope ratios to mineral age, temperature, and fluid source.
Lesson 5 • X-Ray Diffraction Analysis
Covers powder and single-crystal XRD principles, data collection, and phase identification. Connects diffraction patterns to unit cell parameters and mineral identification.
Chapter 8HideHide detailsSee detailsApplied Mineral Chemistry in Industry and Research
Applied Mineral Chemistry in Industry and Research
Lesson 1 • Environmental Mineralogy and Geochemistry
Applies mineral chemistry to acid mine drainage, contaminant sorption, and remediation design. Links sulphide oxidation reactions to secondary mineral formation and water quality.
Lesson 2 • Industrial and Technological Mineral Applications
Examines how mineral chemistry controls performance in ceramics, batteries, pigments, and catalysts. Highlights the role of purity and trace element content in industrial mineral specifications.
Lesson 3 • Data Integration and Reporting
Covers multivariate statistical analysis, geochemical databases, and professional reporting of mineral chemistry data. Prepares students to communicate findings clearly to technical and non-technical audiences.
Lesson 4 • Mineral Chemistry in Ore Deposit Evaluation
Uses mineral chemistry vectors to identify ore deposit types and guide exploration targeting. Connects indicator mineral chemistry to deposit models and resource estimation.
Lesson 5 • Mineral Chemistry in Metamorphic Petrology
Applies geothermobarometry and reaction textures to reconstruct pressure-temperature paths. Connects mineral compositional zoning to tectonic burial and exhumation histories.
Your valid completion certificate
This course is for you:
Geology undergraduates: ready to deepen their understanding of mineral composition.
Exploration geologists: seeking stronger chemical tools for ore deposit interpretation.
Environmental scientists: needing mineral chemistry knowledge for contamination assessments.
Petrology graduate students: building a rigorous foundation for thesis-level research.
Mining industry professionals: wanting to connect field observations to chemical data.
Curious earth science enthusiasts: eager to understand what minerals are made of.
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