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Chemical Kinetics

Manipur Board · Class 12 · Chemistry

Flashcards for Chemical Kinetics — Manipur Board Class 12 Chemistry. Quick Q&A cards covering key concepts, definitions, and formulas.

32 questions22 flashcards5 concepts

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22 Flashcards
Card 1Introduction to Chemical Kinetics

What is chemical kinetics and why is it important?

Answer

Chemical kinetics is the study of reaction rates and their mechanisms. It tells us HOW FAST a reaction occurs, while thermodynamics only tells us if a reaction is feasible. It helps us understand fact

Card 2Rate of Reaction

Define rate of a chemical reaction and give its mathematical expression.

Answer

Rate of reaction is the change in concentration of reactants or products per unit time. For reaction R → P: Rate = -Δ[R]/Δt = +Δ[P]/Δt Negative sign for reactants (decreasing concentration), positive

Card 3Rate of Reaction

What are the units of rate of reaction? Give examples.

Answer

Units of rate = concentration/time Common units: • mol L⁻¹ s⁻¹ (for solutions) • atm s⁻¹ (for gaseous reactions when concentration is expressed as partial pressure) • M s⁻¹ (molarity per second)

Card 4Rate Law and Rate Constant

What is rate law or rate expression? Give the general form.

Answer

Rate law is the expression relating reaction rate to the concentration of reactants. General form: Rate = k[A]ˣ[B]ʸ Where: • k = rate constant • [A], [B] = concentrations of reactants • x, y = powers

Card 5Order of Reaction

Define order of a reaction with examples.

Answer

Order of reaction is the sum of powers of concentration terms in the rate law. For Rate = k[A]ˣ[B]ʸ: • Order w.r.t. A = x • Order w.r.t. B = y • Overall order = x + y Examples: • 2NO + O₂ → 2NO₂: Rate

Card 6Molecularity vs Order

What is molecularity? How does it differ from order?

Answer

Molecularity is the number of molecules participating in an elementary reaction. Differences from Order: • Molecularity: always a whole number (1, 2, 3), theoretical concept • Order: can be fractional

Card 7Zero Order Reactions

Derive the integrated rate equation for a zero-order reaction.

Answer

For zero-order reaction: Rate = k[R]⁰ = k -d[R]/dt = k Integrating: -∫d[R] = ∫k dt -[R] = kt + I At t = 0, [R] = [R]₀, so I = -[R]₀ Therefore: [R] = [R]₀ - kt Rate constant: k = ([R]₀ - [R])/t

Card 8Zero Order Reactions

What is the half-life of a zero-order reaction?

Answer

Half-life (t₁/₂) is time when [R] = [R]₀/2 From [R] = [R]₀ - kt: [R]₀/2 = [R]₀ - kt₁/₂ Solving: t₁/₂ = [R]₀/2k Key points: • Half-life is directly proportional to initial concentration • Half-life is

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What are the important topics in Chemical Kinetics for Manipur Board Class 12 Chemistry?
Key topics in Chemical Kinetics include Chemical Kinetics - Complete Chapter Mind Map, Chemical Kinetics — Complete Chapter Overview, Chemical Kinetics — Complete Concept Map. These are the concepts Manipur Board Class 12 examiners draw on most — study them first, then practise related questions.
How to score full marks in Chemical Kinetics — Manipur Board Class 12 Chemistry?
Understand the core concepts first, then work through the 32 practice questions available for this chapter. Revise formulas and definitions regularly, and use flashcards for quick recall before the exam.
How many flashcards are available for Chemical Kinetics?
There are 22 flashcards for Chemical Kinetics covering key definitions, formulas, and concepts. Use them daily for 10–15 minutes for best results.

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