Chemical Kinetics — Concept Maps
Tamil Nadu Board · Class 12 · Chemistry
3 concept maps of Chemical Kinetics for Tamil Nadu Board Class 12 Chemistry, each also written out as a text outline.
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Chemical Kinetics Concept Map
The map in words
- Chemical Kinetics
- Rate of Reaction
- Average Rate
- Instantaneous Rate
- Rate Constant
- Units of Rate
- Rate Law
- Order of Reaction
- Zero Order
- First Order
- Second Order
- Fractional Order
- Experimental Determination
- vs Stoichiometry
- Order of Reaction
- Integrated Equations
- Zero Order
- Linear [A] vs t
- First Order
- Logarithmic form
- Integrated Forms
- Zero Order
- Half-Life
- First Order
- Independent of [A]
- Zero Order
- Depends on [A]
- Successive Half-Lives
- First Order
- Collision Theory
- Activation Energy
- Steric Factor
- Collision Frequency
- Molecular Orientation
- Arrhenius Equation
- Rate Constant k
- Frequency Factor A
- Temperature Dependence
- Graphical Analysis
- Factors Affecting Rate
- Concentration
- Temperature
- Nature of Reactants
- Surface Area
- Catalysts
- Reaction Mechanisms
- Elementary Steps
- Rate Determining Step
- Intermediates
- Overall Reaction
- Applications
- Pharmacokinetics
- Drug Dosing
- Industrial Processes
- Rate of Reaction
Chemical Kinetics - Concept Hierarchy
The map in words
- Chemical Kinetics
- Reaction Rate
- Average Rate
- Instantaneous Rate
- Units mol L-1 s-1
- Rate Laws
- Rate Constant k
- Reaction Order
- Zero Order
- First Order
- Second Order
- Integrated Equations
- First Order
- Zero Order
- Half-Life Period
- Theories
- Collision Theory
- Activation Energy
- Arrhenius Equation
- Factors Affecting Rate
- Concentration
- Temperature
- Surface Area
- Catalyst
- Nature of Reactants
- Reaction Mechanism
- Elementary Steps
- Molecularity
- Rate Determining Step
- Intermediates
- Reaction Rate
Flowchart showing how reaction rate is determined for reactants and products
The map in words
- Chemical Reaction A → B
- Measuring Rate
- Reactant A: Concentration Decreases
- Rate = -ΔA/Δt
- Result: Positive Rate
- Rate = -ΔA/Δt
- Product B: Concentration Increases
- Rate = +ΔB/Δt
- Reactant A: Concentration Decreases
- Measuring Rate
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