Kinetics Flashcards

1
Q

What is activation energy?

A

The minimum energy required for a reaction to occur

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2
Q

What is the Arrhenius equation?

A

k = A * e ^ - (Ea/RT)

k - Rate constant
Ea - Activation energy in KJ/mol
T - Temperature in K
R - 8.314 in J/mol

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3
Q

What are the factors that affect the rate constant value?

A
  • Temperature
  • Concentration of reactants
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4
Q

What is zero order?

A

Means changing the concentration of the reactant has no effect on the rate

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5
Q

What is 1st order?

A

The rate is directly proportional to the concentration of reactant

E.g. doubling the concentration will double the rate

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6
Q

What is 2nd order?

A

The rate is proportional to the square of the concentration of reactant

E.g. doubling the concentration of reactant increases the rate by x4

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7
Q

How to calculate half life for zero order?

A

t 1/2 = [A]₀ / 2k

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8
Q

How to calculate half life for first order?

A

t 1/2 = ln (2) / k

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9
Q

How to calculate half life for second order?

A

t 1/2 = 1 / k[A]₀

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10
Q

How to work out how much faster a reaction is going at at two temperatures when A is constant:

A
  1. Work out the difference in temperature by one
    E.g. 1/T1 and 1/T2
  2. Work out Ea/R
  3. Multiply the temperature difference by Ea/R
  4. Use the answer to the exponent of e
    E.g. e^ the answer
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