
Mole Removal Course
Master the mole concept from the ground up and build the quantitative chemistry skills that power every calculation in the field. This course takes you from Avogadro's number through stoichiometry, solution chemistry, and gas laws with clear instruction and extensive practice. Whether you're preparing for a chemistry exam or strengthening your lab skills, this is the complete foundation you need.
What you will learn:
You will develop a thorough understanding of the mole as a counting unit and learn to apply it across every major area of general chemistry. The course covers molar mass calculations, unit conversions, percent composition, empirical and molecular formulas, and balanced equation stoichiometry. You will also work through limiting reagent problems, percent yield, molarity, dilution, and titration. Advanced topics include the ideal gas law, thermochemical equations, and electrochemistry. Mathematical tools, laboratory measurement techniques, and digital calculation methods are integrated throughout to build both accuracy and speed.
How you study practically Mole Removal Course
How you practise Mole Removal 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 detailsIntroduction to Moles and Mole Concept
Introduction to Moles and Mole Concept
Lesson 1 • What Is a Mole?
Defines the mole as a standard SI unit for amount of substance. Establishes the conceptual bridge between atomic-scale particles and measurable macroscopic quantities.
Lesson 2 • Avogadro's Number Explained
Introduces 6.022 × 10²³ as the number of entities per mole. Connects this constant to relative atomic mass and the periodic table.
Lesson 3 • Mole vs. Mass vs. Number
Distinguishes moles, mass in grams, and particle count as three interconvertible quantities. Prepares students for conversion calculations in later sections.
Lesson 4 • Scientific Notation and Unit Analysis
Reviews scientific notation and dimensional analysis as essential tools for mole calculations. Ensures mathematical readiness before quantitative work begins.
Chapter 2HideHide detailsSee detailsMolar Mass and Atomic Weights
Molar Mass and Atomic Weights
Lesson 1 • Relative Atomic Mass and the Periodic Table
Explains how relative atomic mass values on the periodic table represent weighted averages of isotopes. Links atomic mass units to grams per mole for practical use.
Lesson 2 • Precision and Significant Figures
Applies significant figure rules to molar mass calculations to ensure reportable accuracy. Connects precision standards to real laboratory and industrial contexts.
Lesson 3 • Molar Mass of Compounds
Teaches summation of atomic masses weighted by subscripts to find compound molar mass. Reinforces formula reading and arithmetic precision.
Lesson 4 • Molar Mass of Elements
Demonstrates that molar mass of a monatomic element equals its relative atomic mass in g/mol. Covers diatomic and polyatomic elemental forms as special cases.
Chapter 3HideHide detailsSee detailsMole Conversions and Calculations
Mole Conversions and Calculations
Lesson 1 • Moles to Mass Conversions
Uses molar mass as a conversion factor to convert moles into grams. Builds the core calculation skill applied throughout all subsequent chapters.
Lesson 2 • Moles to Particles Conversions
Applies Avogadro's number to convert moles into atoms, molecules, or formula units. Extends conversion skills to the particle level.
Lesson 3 • Conversion Practice and Fluency
Provides varied practice sets to consolidate all conversion types. Identifies and corrects persistent errors before advancing to stoichiometry.
Lesson 4 • Multi-Step Conversion Problems
Chains mass-to-moles and moles-to-particles conversions in a single calculation. Develops problem-solving fluency for complex real-world scenarios.
Lesson 5 • Mass to Moles Conversions
Reverses the molar mass conversion factor to convert grams into moles. Reinforces bidirectional fluency with the mole-mass relationship.
Chapter 4HideHide detailsSee detailsPercent Composition and Empirical Formulas
Percent Composition and Empirical Formulas
Lesson 1 • Deriving Empirical Formulas
Converts percent composition data to mole ratios and reduces to the simplest whole-number formula. Builds the analytical skill of interpreting elemental analysis results.
Lesson 2 • Molecular Formulas from Empirical Formulas
Uses molar mass data to scale the empirical formula to the true molecular formula. Connects empirical formula work to real compound identification.
Lesson 3 • Percent Composition by Mass
Defines percent composition as the mass fraction of each element in a compound. Uses molar mass to calculate theoretical percent composition from a formula.
Lesson 4 • Combustion Analysis
Applies percent composition techniques to combustion analysis data for carbon-hydrogen compounds. Introduces a standard laboratory method for formula determination.
Chapter 5HideHide detailsSee detailsStoichiometry: Mole Ratios in Reactions
Stoichiometry: Mole Ratios in Reactions
Lesson 1 • Mole-to-Mole Stoichiometry
Calculates moles of product or reactant from given moles of another substance. Isolates the mole ratio step before introducing mass conversions.
Lesson 2 • Balancing Chemical Equations
Reviews conservation of mass and the rules for balancing equations by inspection. Provides the balanced equations required for all stoichiometric calculations.
Lesson 3 • Mass-to-Mass Stoichiometry
Chains molar mass conversions with mole ratios to convert grams of one substance to grams of another. Integrates all prior skills into the standard stoichiometry workflow.
Lesson 4 • Mole Ratios from Balanced Equations
Extracts mole ratios from stoichiometric coefficients and uses them as conversion factors. Establishes the central tool of all stoichiometry calculations.
Lesson 5 • Stoichiometry Problem-Solving Strategy
Presents a systematic framework for approaching any stoichiometry problem. Builds problem-solving habits that reduce errors in complex multi-substance scenarios.
Chapter 6HideHide detailsSee detailsLimiting Reagents and Percent Yield
Limiting Reagents and Percent Yield
Lesson 1 • Excess Reagent Calculations
Determines the mass of excess reagent remaining after a reaction reaches completion. Completes the full quantitative picture of a limiting reagent problem.
Lesson 2 • Concept of the Limiting Reagent
Explains why the reagent present in the smallest stoichiometric amount controls product yield. Uses analogies and visual models to build intuitive understanding.
Lesson 3 • Theoretical Yield Calculations
Calculates the maximum possible product mass using the limiting reagent. Establishes the benchmark against which actual experimental yield is measured.
Lesson 4 • Percent Yield and Reaction Efficiency
Computes percent yield from actual and theoretical yield and interprets its meaning. Connects yield analysis to quality control and process optimisation.
Lesson 5 • Identifying the Limiting Reagent
Applies two calculation methods to determine which reactant is limiting. Develops reliable technique for any reaction with given masses of multiple reactants.
Chapter 7HideHide detailsSee detailsMoles in Solution: Molarity and Dilution
Moles in Solution: Molarity and Dilution
Lesson 1 • Concentration and Molarity
Defines molarity as moles of solute per litre of solution and distinguishes it from other concentration units. Establishes the vocabulary and formula used throughout solution chemistry.
Lesson 2 • Titration and Stoichiometric Equivalence
Introduces titration as a technique for determining unknown concentration using stoichiometric equivalence. Applies all solution and stoichiometry skills to a standard analytical method.
Lesson 3 • Dilution Calculations
Applies the dilution equation (C₁V₁ = C₂V₂) to calculate concentrations after dilution. Builds skill in preparing working solutions from stock solutions.
Lesson 4 • Preparing Solutions of Known Molarity
Describes the laboratory procedure for dissolving a solute to reach a target molarity. Connects calculation to practical volumetric glassware technique.
Lesson 5 • Solution Stoichiometry
Combines molarity with mole ratios to solve stoichiometry problems involving solutions. Integrates concentration concepts with the stoichiometry workflow from Chapter 5.
Chapter 8HideHide detailsSee detailsAdvanced Mole Applications and Integration
Advanced Mole Applications and Integration
Lesson 1 • Moles and Ideal Gas Law
Applies the ideal gas law (PV = nRT) to relate moles of gas to pressure, volume, and temperature. Extends mole calculations into the gas phase.
Lesson 2 • Electrochemistry and Faraday's Law
Uses moles of electrons transferred to calculate mass deposited or dissolved in electrolytic processes. Applies mole concepts to electrochemical stoichiometry.
Lesson 3 • Multi-Concept Integration Problems
Presents complex problems requiring simultaneous use of stoichiometry, solution chemistry, and gas laws. Builds the integrative reasoning needed for advanced coursework and professional work.
Lesson 4 • Moles in Thermochemical Equations
Connects mole quantities to enthalpy changes expressed per mole in thermochemical equations. Enables energy calculations scaled to any reaction amount.
Lesson 5 • Mole Concepts in Industry and Research
Surveys how mole-based calculations drive pharmaceutical dosing, materials synthesis, and industrial process design. Motivates mastery by connecting theory to professional practice.
Your valid completion certificate
This course is for you:
Pre-med student: needs a rock-solid quantitative chemistry base before advancing.
Nursing school applicant: must pass chemistry prerequisites with genuine understanding.
High school graduate: preparing to enter a college-level general chemistry course.
Career changer entering chemical manufacturing: requires practical mole calculation skills quickly.
Pharmacy technician trainee: needs to understand concentration and dosage calculations precisely.
Hobbyist home chemist: wants to move beyond recipes and understand the underlying math.
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