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Reactivity (energetics, kinetics, equilibrium, redox) - Chemistry IB Study Notes

Reactivity (energetics, kinetics, equilibrium, redox) - Chemistry IB Study Notes | Times Edu
IBChemistry~6 min read

Overview

# Reactivity Summary This unit explores the fundamental factors governing chemical reactions: energetics (enthalpy changes and Hess's Law), kinetics (reaction rates and activation energy), equilibrium (Le Chatelier's principle and Kc calculations), and redox processes (oxidation states and electrochemical cells). Students must master calculations involving energy changes, rate expressions, equilibrium constants, and half-equations, as these topics constitute approximately 30-40% of IB Chemistry examinations. The interconnected nature of these concepts is crucial for predicting reaction feasibility, understanding industrial processes, and tackling both Paper 2 structured questions and Paper 3 practical applications.

Core Concepts & Theory

Reactivity encompasses four interconnected themes that determine how and why chemical reactions occur.

Energetics studies energy changes in reactions. Enthalpy change (ΔH) measures heat energy transferred at constant pressure. Exothermic reactions (ΔH < 0) release energy, while endothermic reactions (ΔH > 0) absorb energy. Key equation: ΔH = H(products) - H(reactants). Hess's Law states that total enthalpy change is independent of pathway taken. Bond enthalpy is energy required to break one mole of bonds in gaseous state.

Kinetics examines reaction rates. Rate of reaction = change in concentration/time. The collision theory requires particles to collide with sufficient activation energy (Ea) and correct orientation. Catalysts lower Ea without being consumed, providing alternative reaction pathways.

Equilibrium applies to reversible reactions where forward and reverse rates become equal. At dynamic equilibrium, concentrations remain constant but reactions continue. Le Chatelier's Principle: systems respond to counteract changes in concentration, temperature, or pressure. Kc = [products]/[reactants] at equilibrium (concentrations raised to stoichiometric coefficients).

Redox involves electron transfer. Oxidation = electron loss (increase in oxidation state); Reduction = electron gain (decrease in oxidation state). Mnemonic: OIL RIG (Oxidation Is Loss, Reduction Is Gain). Oxidation state rules: elements = 0, monatomic ions = charge, oxygen usually -2, hydrogen usually +1. Half-equations show electron transfer explicitly.

Detailed Explanation with Real-World Examples

These concepts govern everyday chemistry around us.

Energetics in Action: Your body's metabolism is controlled enthalpy changes. Glucose combustion (ΔH = -2800 kJ/mol) releases energy for cellular work. Hand warmers use exothermic crystallization of sodium acetate, while instant cold packs exploit endothermic ammonium nitrate dissolution. Industrial ammonia synthesis via the Haber process must balance exothermicity with reaction kinetics.

Kinetics in Practice: Think of activation energy as a hill between reactants and products. Food refrigeration slows molecular collisions, reducing spoilage rates. Catalytic converters in vehicles use platinum/rhodium catalysts to accelerate harmful gas breakdown at lower temperatures. Enzyme catalysts (biological catalysts) enable reactions at body temperature that would otherwise require extreme conditions.

Equilibrium Applications: The Haber process (N₂ + 3H₂ ⇌ 2NH₃) demonstrates Le Chatelier's principle brilliantly. Increasing pressure shifts equilibrium toward fewer gas molecules (right), favoring ammonia production. Your blood maintains pH equilibrium through carbonic acid/bicarbonate buffer systems.

Redox Everywhere: Rusting is slow iron oxidation (Fe → Fe²⁺ + 2e⁻). Batteries operate via controlled redox reactions—zinc oxidizes at anode, copper reduces at cathode. Photosynthesis reduces CO₂ to glucose while oxidizing water. Bleach oxidizes colored molecules, breaking chromophores.

Analogy: Think of equilibrium as a busy two-way street where traffic (molecules) moves both directions at equal rates—the street looks stationary but cars continuously flow both ways.

Worked Examples & Step-by-Step Solutions

**Example 1: Enthalpy Calculation using Hess's Law** Calculate ΔH for: C(s) + ½O₂(g) → CO(g) Given: - C(s) + O₂(g) → CO₂(g), ΔH₁ = -394 kJ/mol - CO(g) + ½O₂(g) → CO₂(g), ΔH₂ = -283 kJ/mol *Solution:* Target equation = Equation 1 - Equation 2 ΔH = ΔH₁ - ΔH₂ = -394 - (-283) = **-111 kJ/mol** >*E...

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Key Concepts

  • Energetics: The study of energy changes that occur during chemical reactions.
  • Kinetics: The study of the rates (speeds) at which chemical reactions occur.
  • Equilibrium: A state in a reversible reaction where the rate of the forward reaction equals the rate of the reverse reaction, so reactant and product concentrations remain constant.
  • Redox Reaction: A chemical reaction involving the transfer of electrons between reactants.
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Exam Tips

  • Always draw energy profiles (reaction pathway diagrams) for exothermic and endothermic reactions, clearly labeling activation energy and enthalpy change.
  • When explaining factors affecting reaction rate, always link them back to **collision theory** (frequency and energy of collisions).
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