
Intro To Chemistry Course
Build a rock-solid foundation in chemistry, from atomic structure and chemical bonding to stoichiometry, thermochemistry, and equilibrium. This course covers every core concept you need to understand how matter behaves and why reactions happen. Whether you're preparing for advanced science coursework or entering a chemistry-related field, you'll finish with the quantitative skills and conceptual clarity to tackle real problems with confidence.
What you will learn:
In this course, you will master the fundamental principles that drive all of chemistry. You will learn to classify matter, apply SI units, and perform accurate measurements using significant figures. You will explore atomic theory, periodic trends, and chemical bonding to understand why substances behave the way they do. Stoichiometry, gas laws, thermochemistry, and acid-base equilibrium are covered in full quantitative detail. Supplementary chapters extend your knowledge into organic chemistry, biochemistry, environmental chemistry, and materials science. You will also develop laboratory skills, data analysis techniques, and critical thinking strategies used by working chemists every day.
How you study in practice Intro To Chemistry Course
How you practise Intro To Chemistry Course
For businesses looking to train their team
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 • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsMatter, Measurement, and the Scientific Method
Matter, Measurement, and the Scientific Method
Lesson 1 • Density and Basic Laboratory Skills
Applies measurement concepts to density calculations and introduces safe lab practices. Students gain hands-on confidence with common instruments and data recording.
Lesson 2 • SI Units and Metric Conversions
Introduces the International System of Units and dimensional analysis. Students convert between units accurately, a skill required for all quantitative problem-solving ahead.
Lesson 3 • Significant Figures and Measurement Uncertainty
Covers precision, accuracy, and rules for reporting measured values. Correct significant figure usage is enforced in all calculations throughout the course.
Lesson 4 • Classifying and Describing Matter
Distinguishes pure substances from mixtures and physical from chemical properties. Provides the classification framework used in every subsequent chapter.
Lesson 5 • What Is Chemistry and Why It Matters
Defines chemistry's scope and its role in science and industry. Connects everyday phenomena to atomic-level explanations students will develop throughout the course.
Chapter 2HideHide detailsSee detailsAtomic Structure and the Periodic Table
Atomic Structure and the Periodic Table
Lesson 1 • Periodic Trends
Quantifies how atomic radius, ionisation energy, and electronegativity vary across the table. These trends underpin bonding and reactivity concepts in the next chapter.
Lesson 2 • Electron Configuration and Orbital Theory
Explains energy levels, subshells, and orbital shapes using quantum numbers. Electron configuration directly predicts chemical behaviour covered in later chapters.
Lesson 3 • Organisation of the Periodic Table
Explains how elements are arranged by atomic number and grouped by properties. Students navigate periods, groups, and blocks to predict element behaviour.
Lesson 4 • Historical Development of Atomic Theory
Traces atomic models from Dalton through Bohr to the quantum model. Understanding this progression clarifies why the modern model is structured as it is.
Lesson 5 • Subatomic Particles and Atomic Notation
Identifies protons, neutrons, and electrons and their roles in atomic identity. Students read and write isotope notation and calculate atomic mass from isotope abundance.
Chapter 3HideHide detailsSee detailsChemical Bonding and Molecular Structure
Chemical Bonding and Molecular Structure
Lesson 1 • Metallic Bonding and Network Solids
Explains the electron-sea model for metals and covalent network structures. Students compare conductivity, hardness, and melting points across bonding types.
Lesson 2 • Covalent Bonding and Lewis Structures
Covers electron sharing, bond order, and the octet rule for drawing Lewis structures. Accurate Lewis structures are prerequisite for geometry and polarity topics below.
Lesson 3 • Molecular Geometry Using VSEPR
Applies VSEPR theory to predict three-dimensional shapes from electron pair repulsion. Geometry determines polarity and intermolecular forces discussed in later chapters.
Lesson 4 • Ionic Bonding and Ionic Compounds
Describes electron transfer between metals and nonmetals and the resulting lattice structures. Students name and write formulas for ionic compounds using charge balance.
Lesson 5 • Polarity and Intermolecular Forces
Distinguishes bond polarity from molecular polarity and links both to intermolecular forces. Students explain boiling points and solubility using force type and strength.
Chapter 4HideHide detailsSee detailsChemical Formulas, Nomenclature, and the Mole
Chemical Formulas, Nomenclature, and the Mole
Lesson 1 • The Mole Concept and Avogadro's Number
Defines the mole as a counting unit and links it to molar mass and Avogadro's number. Mole calculations are the quantitative backbone of all stoichiometry work.
Lesson 2 • Chemical Formulas and Composition
Distinguishes empirical from molecular formulas and calculates percent composition. These skills connect formula writing to experimental data analysis.
Lesson 3 • Molar Volume and Formula Mass
Extends mole concepts to gases at standard conditions and to formula mass calculations. Students solve multi-step conversion problems involving all three mole relationships.
Lesson 4 • Naming Inorganic Compounds
Applies IUPAC rules to name ionic, covalent, and acid compounds systematically. Correct nomenclature is required for writing and interpreting all chemical equations ahead.
Chapter 5HideHide detailsSee detailsChemical Reactions and Stoichiometry
Chemical Reactions and Stoichiometry
Lesson 1 • Writing and Balancing Chemical Equations
Applies conservation of mass to balance equations by inspection and algebraic methods. Balanced equations are the starting point for every stoichiometry calculation.
Lesson 2 • Limiting Reagents and Percent Yield
Identifies the limiting reagent and calculates theoretical and percent yield. Students evaluate reaction efficiency, a critical skill in laboratory and industrial contexts.
Lesson 3 • Mole Ratios and Stoichiometric Calculations
Uses balanced equation coefficients as mole ratios to convert between reactants and products. This core skill is applied in every quantitative chemistry context going forward.
Lesson 4 • Solution Stoichiometry and Molarity
Defines molarity and applies it to stoichiometry problems involving dissolved reactants. Prepares students for titration and aqueous reaction calculations in later chapters.
Lesson 5 • Types of Chemical Reactions
Classifies reactions as synthesis, decomposition, single replacement, double replacement, or combustion. Pattern recognition speeds equation writing and prediction in later work.
Chapter 6HideHide detailsSee detailsStates of Matter, Gases, and Thermochemistry
States of Matter, Gases, and Thermochemistry
Lesson 1 • Hess's Law and Standard Enthalpies
Uses Hess's law and standard enthalpies of formation to calculate reaction enthalpy. Students combine thermochemical equations to find ΔH for reactions not measured directly.
Lesson 2 • Thermochemistry and Enthalpy
Defines heat, enthalpy, and exothermic vs. endothermic processes with sign conventions. Students calculate heat transfer using specific heat capacity and calorimetry data.
Lesson 3 • Kinetic Molecular Theory and Gas Behaviour
Explains gas pressure, temperature, and volume using particle motion models. KMT provides the conceptual basis for all gas law relationships in this chapter.
Lesson 4 • The Gas Laws
Applies Boyle's, Charles's, Gay-Lussac's, and combined gas laws to solve pressure-volume-temperature problems. Students also use the ideal gas law and Dalton's law.
Lesson 5 • Changes of State and Phase Diagrams
Describes energy changes during melting, boiling, and sublimation using heating curves. Phase diagrams show conditions for each state and the critical and triple points.
Chapter 7HideHide detailsSee detailsSolutions, Acids, Bases, and Equilibrium
Solutions, Acids, Bases, and Equilibrium
Lesson 1 • Acid-Base Theories and Properties
Compares Arrhenius, Brønsted-Lowry, and Lewis definitions of acids and bases. Students identify conjugate pairs and predict proton transfer direction in reactions.
Lesson 2 • Le Chatelier's Principle and Buffer Systems
Predicts equilibrium shifts from changes in concentration, pressure, and temperature. Buffer calculations show how weak acid-base pairs resist pH change.
Lesson 3 • pH, pOH, and Neutralisation
Calculates pH and pOH from ion concentrations and applies them to neutralisation reactions. Students perform titration calculations and interpret titration curves.
Lesson 4 • Solution Properties and Colligative Effects
Explains solubility, concentration units, and colligative properties such as boiling point elevation. Students calculate molality and predict property changes from solute addition.
Lesson 5 • Chemical Equilibrium and the Equilibrium Constant
Defines dynamic equilibrium and derives the equilibrium constant expression from balanced equations. Students calculate K and use it to predict reaction direction.
Chapter 8HideHide detailsSee detailsReaction Kinetics, Electrochemistry, and Nuclear Chemistry
Reaction Kinetics, Electrochemistry, and Nuclear Chemistry
Lesson 1 • Electrochemical Cells and Cell Potential
Distinguishes galvanic from electrolytic cells and calculates standard cell potential. Students apply the Nernst equation to non-standard conditions and relate ΔG to cell potential.
Lesson 2 • Reaction Rates and Rate Laws
Defines reaction rate and derives rate laws from experimental concentration-time data. Students determine reaction order and rate constants from initial rate experiments.
Lesson 3 • Oxidation-Reduction Reactions
Assigns oxidation states and balances redox equations using the half-reaction method. Redox concepts underpin electrochemical cell calculations in the next section.
Lesson 4 • Activation Energy and Catalysis
Explains the energy barrier for reactions using the Arrhenius equation and energy diagrams. Catalysts lower activation energy without being consumed, increasing reaction rate.
Lesson 5 • Nuclear Chemistry and Radioactive Decay
Classifies nuclear decay types, writes nuclear equations, and calculates half-life decay. Students evaluate applications of nuclear chemistry in energy, medicine, and dating.
Your valid completion certificate
This course is for you:
Pre-med students: needing a strong science foundation before advanced coursework.
Career changers: moving into healthcare, materials, or environmental science fields.
High school graduates: preparing to succeed in their first college science class.
Nursing students: required to understand chemical processes behind medications and physiology.
Curious adults: wanting to finally make sense of how the physical world works.
Lab technicians: seeking formal knowledge to complement hands-on workplace experience.
What our students say
Your lessons are perfect. I purchased the one-year package and finally have the opportunity to follow various topics of interest without needing to change platforms... I'm grateful for everything you do, I've already recommended you to other people...

I like how the lessons are straight to the point and how I can change chapters and skip content I don't need.

I like the content and the way videos are presented and transcribed, which speeds up the process!

The platform is fast and simple to use. The diversity of content and complementary videos really help with learning.

Top qualifications
FAQ
Who is Dedika?
Is the certificate valid in the United Kingdom?
Are the courses free?
What is the course workload?
What are the courses like?
How do the courses work?
What is the duration of the courses?
What is the cost or price of the courses?
What is an EAD or online course and how does it work?
PDF Course




















