Equilibrium Flashcards

1
Q

What is homogenous equilibria

A

contains equilibrium species that all have the same state/phase.

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2
Q

What is heterogenous equilibrium

A

contains equilibrium species that have different states or phases

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3
Q

What species are included in the kc equation

A

g or aq

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4
Q

Describe an experiment to determine kc

A
  1. In a conical flask mix 0.1 mol of CH3COOH and 0.1 mol of C2H5OH and 0.005 mol of HCl. The total volume is 20 cm3. Amount of water in acid catalyst is 0.5 mol.
  2. add 0.005 mol of HCl to a second flask as a control.
  3. stopper both flasks and leave for a week to reach equilibrium.
  4. carry out a titration on the equilibrium mixture using a standard solution of NaOH.
  5. Repeat the titration with the control to determine the amount of acid catalyst that has been added.
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5
Q

How could you analyze the results of the kc practical

A

Using the 2 titrations determine the amount of CH3COOH and then use this to determine equilibrium concentrations of each component. Work out concentrations and substitute them into the kc equation to find a value for kc

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6
Q

What is the mole fraction of a gas

A

its proportion by volume to the total volume of gases in a gas mixture

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7
Q

mole fraction formula

A

mole fraction x(A) = number of moles of A/total number of moles in a gas mixture

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8
Q

What is partial pressure

A

the contribution that the gas makes towards the total pressure

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9
Q

Partial pressure formula

A

mole fraction of A x total pressure

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10
Q

Write kp for equilibrium of H2 + I2 -> 2HI

A

p(HI)^2/(p(H2) x p(I2))

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11
Q

What species does kp include

A

Gases only

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12
Q

What does k tell you

A

the exact position of equilibrium e.g. if k = 2 then equilibrium is product favored

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13
Q

What can change the value of k

A

Temperature

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14
Q

If you increase the temperature, how does k change with a forward exothermic reaction?

A

equilibrium constant decreases with increasing temperature. The equilibrium yield of products decreases.

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15
Q

Explain the effect on k that increasing temperature has in an exothermic reaction

A

k decreases because partial pressure of the products decreases, and the partial pressure of the reactants increases so equilibrium position is more towards the left.

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16
Q

What is the effect on k does increasing the temperature have on a forward endothermic reaction?

A

Equilibrium constant increases with increasing temperature, and increases the equilibrium yield of products

17
Q

Explain the effect on k with increasing temperature in endothermic reaction

A

k increases, partial pressure of product increases, partial product of reactants decrease so equilibrium shifts right