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High School Chemistry Course
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High School Chemistry Course

Build a rock-solid foundation in chemistry with a course that covers everything from atomic structure and chemical bonding to stoichiometry, gas laws, and acid-base theory. You will develop the analytical skills and scientific vocabulary needed to succeed in any college-level science programme. This course turns complex concepts into clear, manageable lessons you can actually use.

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What you will learn:

In this course, you will master the core principles of high school chemistry through eight comprehensive chapters and six supplementary topics. You will learn to balance chemical equations, perform stoichiometric calculations, and apply gas laws to real problems. The course covers atomic structure, chemical bonding, molecular geometry, solution chemistry, thermochemistry, and chemical equilibrium. Supplementary chapters introduce nuclear chemistry, organic chemistry, electrochemistry, and reaction kinetics. You will also develop strong lab skills, data analysis techniques, and scientific communication abilities that prepare you for advanced coursework.

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Course content

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

Chapter 1See details

Matter, Measurement, and Scientific Method

  • Lesson 1 • Scientific Notation and Dimensional Analysis

    Introduces exponential notation and unit-conversion factor-label method. These tools are essential for solving stoichiometry and gas-law problems.

  • Lesson 2 • Properties and Classification of Matter

    Distinguishes physical vs. chemical properties and pure substances vs. mixtures. Anchors all future content in precise material classification.

  • Lesson 3 • Laboratory Safety and Procedures

    Establishes safe lab behaviour, equipment use, and hazard communication. Safe practice is required before any hands-on experimentation begins.

  • Lesson 4 • Scientific Measurement and SI Units

    Covers SI base units, prefixes, and measurement tools. Accurate measurement underpins every quantitative chemistry task.

  • Lesson 5 • Significant Figures and Data Analysis

    Teaches rules for significant figures, rounding, and error analysis. Students apply these rules to all numerical work throughout the course.

Chapter 2See details

Atomic Structure and the Periodic Table

  • Lesson 1 • Historical Models of the Atom

    Traces atomic theory from Dalton through Bohr to the quantum model. Understanding this history contextualises modern atomic structure.

  • Lesson 2 • Periodic Trends

    Analyses atomic radius, ionisation energy, and electronegativity trends. These trends explain reactivity patterns used in bonding and reactions.

  • Lesson 3 • Organisation of the Periodic Table

    Describes periods, groups, and element families. Table organisation reflects electron configuration and predicts chemical properties.

  • Lesson 4 • Electron Configuration and Energy Levels

    Explains orbital notation, subshells, and the Aufbau principle. Electron configuration determines chemical reactivity and bonding behaviour.

  • Lesson 5 • Subatomic Particles and Atomic Number

    Defines protons, neutrons, and electrons and their roles in atomic identity. Atomic number and mass number are used to characterise any element.

Chapter 3See details

Chemical Bonding and Molecular Structure

  • Lesson 1 • VSEPR Theory and Molecular Geometry

    Applies VSEPR rules to predict 3-D molecular shapes. Geometry directly influences polarity and physical properties of molecules.

  • Lesson 2 • Metallic Bonding and Properties

    Describes the electron-sea model and resulting metallic properties. Connects bonding type to conductivity, malleability, and lustre.

  • Lesson 3 • Ionic Bonding and Ionic Compounds

    Covers electron transfer, lattice formation, and ionic compound properties. Ionic bonding arises from electronegativity differences established in Chapter 2.

  • Lesson 4 • Polarity and Intermolecular Forces

    Distinguishes polar and nonpolar molecules and the forces between them. Intermolecular forces explain boiling points, solubility, and physical states.

  • Lesson 5 • Covalent Bonding and Lewis Structures

    Introduces electron sharing, bond order, and Lewis dot diagrams. Lewis structures are the foundation for predicting molecular geometry.

Chapter 4See details

Chemical Nomenclature and Formula Writing

  • Lesson 1 • Naming Binary Covalent Compounds

    Covers Greek prefix system for naming molecular compounds. Distinguishes covalent naming from ionic naming to avoid confusion.

  • Lesson 2 • Acids and Bases Nomenclature

    Names binary acids and oxyacids using systematic rules. Acid naming prepares students for acid-base reaction equations.

  • Lesson 3 • Naming Binary Ionic Compounds

    Applies naming rules for monatomic ions and binary salts. Correct nomenclature is required for all subsequent reaction and stoichiometry work.

  • Lesson 4 • Polyatomic Ions and Their Compounds

    Introduces common polyatomic ions and their naming conventions. Students write formulas for compounds containing polyatomic ions.

Chapter 5See details

Chemical Reactions and Stoichiometry

  • Lesson 1 • Writing and Balancing Chemical Equations

    Introduces equation notation, state symbols, and balancing by inspection. Balanced equations are the starting point for all stoichiometric calculations.

  • Lesson 2 • Types of Chemical Reactions

    Classifies synthesis, decomposition, single-replacement, double-replacement, and combustion reactions. Pattern recognition speeds equation writing and prediction.

  • Lesson 3 • Stoichiometric Calculations

    Applies mole ratios from balanced equations to solve mass-mass problems. Stoichiometry is the quantitative core of all chemical reaction analysis.

  • Lesson 4 • The Mole Concept and Molar Mass

    Defines Avogadro's number, the mole, and molar mass calculations. The mole bridges atomic-scale counts and laboratory-scale masses.

  • Lesson 5 • Limiting Reagents and Percent Yield

    Identifies the limiting reagent and calculates theoretical and percent yield. These concepts connect lab results to predicted stoichiometric outcomes.

Chapter 6See details

States of Matter and Gas Laws

  • Lesson 1 • Kinetic Molecular Theory

    Describes particle motion, energy, and assumptions of the ideal gas model. KMT provides the molecular explanation for all gas-law relationships.

  • Lesson 2 • Gas Laws: Boyle, Charles, and Gay-Lussac

    Derives and applies the three individual gas laws relating P, V, and T. Each law is a special case of the combined gas law introduced next.

  • Lesson 3 • Dalton's Law and Gas Mixtures

    Applies Dalton's law of partial pressures to gas mixtures and collected gases. Partial pressure calculations are used in lab gas-collection procedures.

  • Lesson 4 • Combined and Ideal Gas Laws

    Unifies individual gas laws into the combined and ideal gas equations. Students solve problems involving all four gas variables simultaneously.

  • Lesson 5 • Phase Changes and Heating Curves

    Analyses energy changes during melting, boiling, and sublimation. Heating curve calculations use heat of fusion and vaporisation values.

Chapter 7See details

Solutions, Acids, and Bases

  • Lesson 1 • Acid-Base Theories

    Compares Arrhenius, Brønsted-Lowry, and Lewis acid-base definitions. Each theory expands the scope of acid-base chemistry progressively.

  • Lesson 2 • pH Scale and Calculations

    Introduces the pH scale, Kw, and logarithmic pH calculations. pH quantifies acidity and is central to neutralisation and buffer problems.

  • Lesson 3 • Solution Formation and Solubility

    Explains the dissolving process, solubility rules, and factors affecting solubility. Solubility concepts underpin concentration and precipitation reactions.

  • Lesson 4 • Neutralisation and Titration

    Applies stoichiometry to acid-base neutralisation and titration calculations. Students determine unknown concentrations using titration data.

  • Lesson 5 • Concentration and Molarity

    Defines molarity and teaches solution preparation and dilution calculations. Molarity is the primary concentration unit used in acid-base and titration work.

Chapter 8See details

Thermochemistry and Chemical Equilibrium

  • Lesson 1 • Hess's Law

    Applies Hess's law to calculate reaction enthalpy from multiple steps. This extends enthalpy calculations to reactions not easily measured directly.

  • Lesson 2 • Energy, Heat, and Calorimetry

    Defines enthalpy, heat capacity, and calorimetry calculations. Calorimetry provides experimental data for all thermochemical calculations.

  • Lesson 3 • Enthalpy and Thermochemical Equations

    Introduces standard enthalpy of formation and reaction enthalpy calculations. Thermochemical equations combine stoichiometry with energy data.

  • Lesson 4 • Chemical Equilibrium and Keq

    Defines dynamic equilibrium and the equilibrium constant expression. Keq values indicate whether products or reactants are favoured at equilibrium.

  • Lesson 5 • Le Chatelier's Principle

    Predicts equilibrium shifts in response to concentration, pressure, and temperature changes. Students apply Le Chatelier's principle to industrial reaction optimisation.

Certification

Your valid completion certificate

This course is for you:

  • High school student: preparing for college entrance exams with a science component.

  • Adult learner: returning to education after years away from formal science classes.

  • Pre-nursing candidate: needing chemistry as a prerequisite for a healthcare programme.

  • Career changer: moving into environmental or technical fields requiring science literacy.

  • Homeschool student: completing a rigorous, structured chemistry curriculum at home.

  • STEM hobbyist: wanting a solid conceptual grounding to support independent science projects.

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