1I. Choose the best answer:25 questions
Q.1If K b and K f for a reversible reaction are 0.8 × 10 -5 and 1.6 × 10 -4 respectively, the value of the equilibrium constant is,
a) 20
b) 0.2 × 10 -1
c) 0.05
d) None of thesev
Q.2At a given temperature and pressure, the equilibrium constant values for the equilibria
3A 2 + B 2 + 2Cr
2A 3 BC and
A 3 BC
\(\frac{3}{2}\) [A 2 ] + \(\frac{1}{2}\) B 2 +C
The relation between K 1 and K 2 is
a) K 1 = \(\frac{1}{\sqrt{\mathrm{K}_{2}}}\)
b)K 2 = \(\mathrm{K}_{1}^{-1 / 2}\)
C) K 1 2 = 2K 2
d) \(\frac{\mathrm{K}_{1}}{2}\) = K 2v
Answer:b)K 2 = \(\mathrm{K}_{1}^{-1 / 2}\)
Q.3The equilibrium constant for a reaction at room temperature is K 1 and that at 700 K is K 2 If K 1 > K 2, then
a) The forward reaction is exothermic
b) The forward reaction is endothermic
c) The reaction does not attain equilibrium
d) The reverse reaction is exothermicv
Answer:a) The forward reaction is exothermic
Q.4The formation of ammonia from N 2 (g) and H 2 (g) is a reversible reaction 2NO(g) + O 2 (g)
2NO 2 (g) + Heat What is the effect of increase of temperature on this equilibrium reaction
a) equilibrium is unaltered
b) formation of ammonia is favoured
c) equilibrium is shifted to the left
d) reaction rate does not changev
Answer:c) equilibrium is shifted to the left
Q.5Solubility of carbon dioxide gas in cold water can be increased by
a) increase in pressure
b) decrease in pressure
c) increase in volume
d) none of thesev
Answer:a) increase in pressure
Q.6Which one of the following is incorrect statement?
a) for a system at equilibrium, Q is always less than the equilibrium constant
b) equilibrium can be attained from either side of the reaction
c) the presence of catalyst affects both the forward reaction and reverse reaction to the same extent
d) Equilibrium constant varied with temperaturev
Answer:a) for a system at equilibrium, Q is always less than the equilibrium constant
Q.7K 1 and K 2 are the equilibrium constants for the reactions respectively.
N 2 (g) + O 2 (g)
2NO(g)
2NO(g) + O 2 (g)
2NO 2 (g)
What is the equilibrium constant for the reaction NO 2 (g) ⇌ 1/2 N 2 (g) + O 2 (g)
a) \(\frac{1}{\sqrt{\mathrm{K}_{1} \mathrm{~K}_{2}}}\)
b) \(\left(\mathrm{K}_{1}=\mathrm{K}_{2}\right)^{1 / 2}\)
c) \(\frac{1}{2 \mathrm{~K}_{1} \mathrm{~K}_{2}}\)
d) \(\left(\frac{1}{\mathrm{~K}_{1} \mathrm{~K}_{2}}\right)^{3 / 2}\)v
Answer:a) \(\frac{1}{\sqrt{\mathrm{K}_{1} \mathrm{~K}_{2}}}\)
Q.8In the equilibrium, 2A(g) ⇌ 2B(g) + C 2 (g) the equilibrium concentrations of A, B and C 2 at 400K are 1 × 10 -4 M, 2.0 × 10 -3 M, 1.5 × 10 -4 M respectively. The value of K c for the equilibrium at 400 K is
a) 0.06
b) 0.09
c) 0.62
d) 3 × 10 -2v
Q.9An equilibrium constant of 3.2 × 10 -6 for a reaction means, the equilibrium is
a) largely towards forward direction
b) largely towards reverse direction
c) never established
d) none of thesev
Answer:b) largely towards reverse direction
Q.10\(\frac{\mathrm{K}_{\mathrm{C}}}{\mathrm{K}_{\mathrm{P}}}\) for the reaction,
N 2 (g) + 3H 2 (g) ⇌ 2NH 3 (g) is
a) \(\frac{1}{\mathrm{RT}}\)
b) \(\sqrt{\mathrm{RT}}\)
c) RT
d) (RT) 2v
Q.11For the reaction AB (g) ⇌ A(g) + B(g), at equilibrium, AB is 20 % dissociated at a total pressure of P, the equilibrium constant K p is related to the total pressure by the expression
a) P = 24 K p
b) P = 8 K p
c) 24 P = K p
d) none of thesev
Q.12In which of the following equilibrium, K p and K c are not equal?
a) 2N0(g) ⇌ N 2 (g) + O 2 (g)
b) SO 2 (g) + NO 2 ⇌ SO 3 (g) + NO(g)
c) H 2 (g) + I 2 (g) ⇌ 2HI(g)
d) PCl 5 ⇌ PCl 3 (g) + Cl 2 (g)v
Answer:b) SO 2 (g) + NO 2 ⇌ SO 3 (g) + NO(g)
Q.13If x is the fraction of PCl 5 dissociated at equilibrium in the reaction PCl 5 ⇌ PCl 3 + Cl 2 then starting with 0.5 mole of PCl 5, the total number of moles of reactants and products at equilibrium is
a) 0.5 – x
b) x + 0.5
c) 2x + 0.5
d) x + 1v
Q.14The values of K p 1 and K p 2; for the reactions, X ⇌ Y + Z, A ⇌ 2B are in the ratio 9: 1 if degree of dissociation of X and A be equal then total pressure at equilibrium P 1, and P 2 are in the ratio
a) 36: 1
b) 1: 1
c) 3: 1
d) 1: 9v
Q.15In the reaction
Fe(OH) 3 (S) ⇌ Fe 3+ (aq) + 3OH – (aq),
if the concentration of OH – ions is decreased by 1/4 times, then the equilibrium concentration of Fe 3+ will
a) not changed
b) also decreased by 1/4 times
c) increase by 4 times
d) increase by 64 timesv
Answer:d) increase by 64 times
Q.16Consider the reaction where K p = 0.5 at a particular temperature PCl 5 (g) ⇌ PCl 3 (g) + Cl 2 (g) if the three gases are mixed in a container so that the partial pressure of each gas is initially 1 atm, then which one of the following is true.
a) more PCl 3 will be produced
b) more Cl 2 will be produced
c) more PCl 5 will be produced
d) None of thesev
Answer:c) more PCl 5 will be produced
Q.17Equimolar concentrations of H 2 and I 2 are heated to equilibrium in a 1 liter flask. What percentage of the initial concentration of H 2 has reacted at equilibrium if the rate constant for both forward and reverse reactions are equal
a) 33%
b) 66%
c) (33) 2 %
d) 16.5 %v
Q.18In a chemical equilibrium, the rate constant for the forward reaction is 2.5 × 10 -2, and the equilibrium constant is 50. The rate constant for the reverse reaction is,
a) 11.5
b) 50
c) 2 × 10 2
d) 2 × 10 -3v
Q.19Which of the following is not a general characteristic of equilibrium involving physical process
a) Equilibrium is possible only in a closed system at a given temperature
b) The opposing processes occur at the same rate and there is a dynamic but stable condition
c) All the physical processes stop at equilibrium
d) All measurable properties of the system remains constantv
Answer:c) All the physical processes stop at equilibrium
Q.20For the formation of Two moles of SO 3 (g) from SO 2 and O 2, the equilibrium constant is K1. The equilibrium constant for the dissociation of one mole of SO 3 into SO 2 and O 2 is
a) \(1 / \mathrm{K}_{1}\)
b) K 1 2
c) \(\left(\frac{1}{\mathrm{~K}_{1}}\right)^{1 / 2}\)
d) \(\frac{\mathrm{K}_{1}}{2}\)v
Answer:c) \(\left(\frac{1}{\mathrm{~K}_{1}}\right)^{1 / 2}\)
Q.21Match the equilibria with the corresponding conditions:
i) Liquid ⇌ Vapour
ii) Solid ⇌ Liquid
iii) Solid ⇌ Vapour
iv) Solute(s) ⇌ Solute (Solution)
1) Melting point
2) Saturated solution
3) Boiling point
4) Sublimation point
5) Unsaturated solutionv
Q.22Consider the following reversible reaction at equilibrium, A + B ⇌ C, If the concentration of the reactants A and B are doubled, then the equilibrium constant will
a) be doubled
b) become one fourth
c) be halved
d) remain the samev
Answer:d) remain the same
Q.23[Co(H 2 O) 6 ] 2+ (aq) (pink) + 4Cl – (aq) ⇌ [CoCl 4 ] 2- (aq) (blue) + 6 H 2 O (l)
In the above reaction at equilibrium, the reaction mixture is blue in colour at room temperature. On cooling this mixture, it becomes pink in color. On the basis of this information, which one of the following is true?
a) ∆H > 0 for the forward reaction
b) ∆H = 0 for the reverse reaction
c) ∆H < 0 for the forward reaction
d) Sign of the ∆H cannot be predicted based on this informationv
Answer:a) ∆H > 0 for the forward reaction
Q.24The equilibrium constants of the following reactions are:
N 2 + 3H 2 ⇌ 2NH 3; K 1
N 2 + O 2 ⇌ 2NO; K 2
H 2 + 1/2O 2 ⇌ H 2 O; K 3
The equilibrium constant (K) for the reaction;
2NH 3 + 5/2 O 2 ⇌ 2NO + 3H 2 O, will be
a) K 2 3 K 3 /K 1
b) K 1 K 3 3 /K 2
c) K 2 K 3 3 /K 1
d) K 2 K 3 /K 1v
Q.25A 20 litre container at 400 K contains CO 2 (g) at pressure 0.4 atm and an excess (neglect the volume of solid SrO). The volume of the container is now decreased by moving the movable piston fitted in the container. The maximum volume of the container, when the pressure of CO 2 attains its maximum value will be: Given that: SrCO 3 (S) ≅ SrO + CO 2 (g) [K p = 1.6 atm]
a) 2 litre
b) 5 litre
c) 10 litre
d) 4 litrev
Answer:b) 5 litre
II. Write brief answer to the following questions:
2II. Write brief answer to the following questions:26 questions
Q.26If there is no change in concentration, why is the equilibrium state considered dynamic?v
Answer:At chemical equilibrium the rate of two opposing reactions are equal and the concentration of. reactants and products do not change with time. This condition is not static and is dynamic because both the forward and reverse reactions are still occurring at the same rate and no macroscopic change is observed. So the chemical equilibrium is in a state of dynamic equilibrium.
Q.27For a given reaction at a particular temperature, the equilibrium constant has a constant value. Is the value of Q also constant? Explain.v
Answer:K c and Q c are constant at equilibrium, both are temperature dependent. When K c is constant at a given temperature, Q c also constant.
Q.28What is the relation between K p and K c ? Given one example for which K p is equal to K c.v
Answer:The relation between K p and K c is K p = K C (RT) ∆n g
K p = equilibrium constant is terms of partial pressure.
K c = equilibrium constant is terms of concentration.
R = gas constant
T = Temperature.
∆n g = Difference between the sum of the number of moles of products and the sum of number of moles of reactants in the gas phase. When ∆n g = 0
K p = K C (RT) 0 = K C i.e., K p = K C
Example: H 2 (g) + I 2 (g) \(\rightleftharpoons\) 2HI(g)
∆n g = 2 – 2 = 0
∴ K p = K C for the synthesis of HI.
Q.29For a gaseous homogeneous reaction at equilibrium, number of moles of products are greater than the number of moles of reactants. Is K c is larger or smaller than K p.v
Q.30When the numerical value of the reaction quotient (Q) is greater than the equilibrium constant, in which direction does the reaction proceed to reach equilibrium?v
Answer:When Q > K C the reaction will proceed in the reverse direction, i.e, formation of reactants.
Q.31For the reaction, A 2 (g) + B 2 (g) ⇌ 2AB(g); ∆H is -ve.
the following molecular scenes represent differenr reaction mixture.(A-green, B-blue)
i) Calculate the equilibrium constant K p and (K c ).
ii) For the reaction mixture represented by scene (x), (y) the reaction proceed in which directions?
iii) What is the effect of increase in pressure for the mixture at equilibrium.v
Answer:K c = \(\frac{[\mathrm{AB}]^{2}}{\left[\mathrm{~A}_{2}\right]\left[\mathrm{B}_{2}\right]}\); A – green, B – blue
Given that ‘V’ is constant(closed system)
At equilbrium,
K c = \(\frac{(-)}{\left(\frac{2}{V}\right)\left(\frac{2}{V}\right)}\) = \(\frac{16}{4}\) = 4
K p = K c (RT) ∆n = 4 (RT) 0 = 4
At stage ‘x’,
Q = \(\frac{\left(\frac{6}{\mathrm{~V}}\right)^{2}}{\left(\frac{2}{\mathrm{~V}}\right)\left(\frac{1}{\mathrm{~V}}\right)}=\frac{36}{2}\) = 18
Q > K c i.e., reverse reaction is favoured.
At stage ‘y’,
Q = \(\frac{\left(\frac{3}{V}\right)^{2}}{\left(\frac{3}{V}\right)\left(\frac{3}{V}\right)}=\frac{9}{3 \times 3}\) = 1
K c > Q i.e., forward reaction is favoured.
Q.32State Le – Chateller principle.v
Answer:It states that If a system at equilibrium is disturbed, then the system shifts itself in a direction that nullifies the effect of that disturbance.
Q.33Consider the following reactions,
a) H 2 (g) + I 2 (g) ⇌ 2HI(g)
b) CaCO 3 (s) ⇌ CaO (s) + CO 2 (g)
c) S(s) + 3 F 2 (g) ⇌ SF 6 (g)
In each of the above reactions find out whether you have to increase (or) decrease the volume to increase the yield of the product.v
Answer:a) H 2 (g) + I 2 (g) ⇌ 2HI(g)
In this reaction, there is no effect on changing the volume. ∆ng = 0
b) CaCO 3 (s) ⇌ CaO (s) + CO 2 (g)
In this reaction, increases in volume favours forward reaction.
c) S(s) + 3 F 2 (g) ⇌ SF 6 (g)
In this reaction, decreases in volume favours forward reaction.
Q.34State law of mass action.v
Answer:The law states that “At any instant, the rate of chemical reaction at a given temperature is directly proportional to the product of the active masses of the reactants at that instant.”
Q.35Explain how will you predict the direction of an equilibrium reaction.v
Answer:From the knowledge of equilibrium constant, it is possible to predict the di¬rection in which the net reaction is taking place for a given concentration or partial pressure of reactants and products.
Consider a general homogeneous reversible reaction,
xA + yB ⇌ lC + mD
For the above reaction under non-equilibrium conditions, reaction quotient ‘Q’ is defined as the ratio of the product of active masses of reaction products raised to the respective stoichiometric coefficients in the balanced chemical equation to that of the reactants.
Under non – equilibrium conditions, the reaction quotient Q can be calculated using the following expression.
Q = \(\frac{[\mathrm{C}]^{1}[\mathrm{D}]^{\mathrm{m}}}{[\mathrm{A}]^{\mathrm{x}}[\mathrm{B}]^{\mathrm{y}}}\)
As the reaction proceeds, there is a continuous change in the concentration of reactants and products and also the Q value until the reaction reaches equilibrium. At equilibrium, Q is equal to K c at a particular temperature. Once the equilibrium is attained, there is no change in the Q value. By knowing the Q value, we can predict the direction of the reaction by comparing it with K c.
If Q = K c, the reaction is in equilibrium state.
If Q > K c, the reaction will proceed in the reverse direction, i.e., formation of reactants.
If Q < K c, the reaction will proceed in the forward direction i.e., formation of products.
Predicting the direction of a reaction
Q.36Derive a general expression for the equilibrium constant Kp and Kc for the reaction, 3H 2 (g) + N 2 (g) ⇌ 2NH 3 (g).v
Answer:Let us consider the formation of ammonia in which, ‘a’ moles nitrogen and h’ moles hydrogen gas are allowed to react in a container of volume V. Let ‘x’ moles of nitrogen react with 3 x moles of hydrogen to give 2x moles of ammonia.
3H 2 (g) + N 2 (g) ⇌ 2NH 3 (g)
Applying law of mass action,
K 2 = \(\frac{\left[\mathrm{NH}_{3}\right]^{2}}{\left[\mathrm{~N}_{2}\right]\left[\mathrm{H}_{2}\right]^{3}}\)
Q.37Write the balanced chemical equation for an equilibrium reaction for which the equilibrium constant is given by expression.v
Answer:K c = \(\frac{\left[\mathrm{NH}_{3}\right]^{4}\left[\mathrm{O}_{2}\right]^{7}}{\left.[\mathrm{NO}]^{4} \mid \mathrm{H}_{2} \mathrm{O}\right]^{6}}\)
Balanced equation is:
4NO + 6H 2 O ⇌ 4NH 3 + 7O 2
Q.38What is the effect of added Inert gas on the reaction at equilibrium?v
Answer:When an inert gas (i.e., a gas which does not react with any other species involved in equilibrium) is added to an equilibrium system at constant volume, the total number of moles. of gases present in the container increases, that is, the total pressure of gases increases, the partial pressure of the reactants and the products are unchanged. Hence at constant volume, the addition of inert gas has no effect on the equilibrium.
Q.39Derive the relation between K p and K c.v
Answer:Let us consider the general reaction in which all reactants and products are ideal gases.
xA + yB ⇌ lC + mD
The equilibrium constant, K c is,
K c = \(\frac{\left[\mathrm{Cl}^{l}[\mathrm{D}]^{\mathrm{m}}\right.}{[\mathrm{A}]^{\mathrm{x}}[\mathrm{B}]^{\mathrm{y}}}\) ……………..(1)
and K p is,
K p = \(\frac{p_{C}^{l} \times p_{D}^{m}}{p_{A}^{x} \times p_{B}^{y}}\) ………….(2)
The ideal gas equation is,
PV = nRT
P = \(\frac{n}{V}\) RT
since, Active mass = molar concentration = n/V
P = active mass × RT
Based on the above expression the partial pressure of the reactants and products can be expresssed as,
P X A = [A] x [RT] x
P Y B = [A] y [RT] y
P l C = [A] l [RT] l
P m D = [A] m [RT] m
On substituting in Eqn.(2).,
By comparing equation (1) and (4),
we get
K p ∆n g =K c (RT) …………..(5)
Where,
∆n g is the difference between the sum of number of moles of products and the sum of number of moles of reactants in the gas phase.
The following relations become immediately obvious.
when ∆n g = 0.
K p = K c (RT) 0 = K c
Example:
H 2 (g) + I 2 (g) ⇌ 2HI(g)
N 2 + O 2 ⇌ 2NO(g)
when ∆n g = +ve
K p = K c (RT) +ve
K p > K c
Example:
2NH 3 (g) ⇌ N 2 (g) + 3H 2 (g)
PCl 5 (g) ⇌ PCl 3 (g) + Cl 2 (g)
When ∆n g = -ve
K p = K c (RT) -ve
K p < K c
Example:
2H 2 (g) + O 2 (g) ⇌ 2H 2 O(g)
2SO 2 (g)+ O 2 (g) ⇌ 2SO 3 (g)
Q.40One mole of PCl 5 is heated in one litre closed container. If 0.6 mole of chlorine is found at equilibrium, Calculate the value of equilibrium constant.v
Answer:Given that,
[PCl 5 ] initial = \(\frac{1 \text { mole }}{1 \mathrm{dm}^{3}}\)
[Cl 2 ] eq = 0.6 mole dm -3
PCl 5 ⇌ PCl 3 + Cl 2
[PCl 3 ] eq = 0.6 mole dm -3
[PCl 5 ] eq = 0.4 mole dm -3
∴ K c = \(\frac{\left[\mathrm{PCl}_{3}\right]\left[\mathrm{Cl}_{2}\right]}{\left[\mathrm{PCl}_{5}\right]}=\frac{0.6 \times 0.6}{0.4}\)
= 0.9 mole dm -3
Q.41For the reaction SrCO 3 (s) ⇌ SrO(s) + CO 2 (g) the value of equilibrium constant K p = 2.2 × 10 -4 at 1002 K. Calculate K c for the reaction.v
Answer::
For the reaction,
SrCO 3 (s) ⇌ SrO(s) + CO 2 (g)
∆n g = 1 – 0 = 1
∴ K p = K c (RT)
2.2 × 10 -4 = K c (0.0821) (1002)
K c = \(\frac{2.2 \times 10^{-4}}{0.0821 \times 1002}\) = 2.674 × 10 -6
Q.42To study the decomposition of hydrogen iodide, a student fills an evacuated 3 litre flask with 0.3 mol of HI gas and allows the reaction to proceed at 500°C. At equilibrium he found the concentration of HI which is equal to 0.05 M. Calculate K c and K p.v
Answer::
V = 3 L
[HI] initial = \(\frac{0.3 \mathrm{~mol}}{3 \mathrm{~L}}\) 0.1 M
[HI] eq = 0.05 M
2 HI(g) ⇌ H 2 (g) + I 2 (g)
K c = \(\frac{\left[\mathrm{H}_{2}\right]\left[\mathrm{I}_{2}\right]}{[\mathrm{HI}]^{2}}=\frac{0.025 \times 0.025}{0.05 \times 0.05}\) = 0.25
K p = K c (RT) (∆n g )
∆n g = 2 – 2 = 0
K p = 0.25(RT) 0
K p = 0.25.
Q.43Oxidation of nitrogen monoxide was studied at 200 with initial pressures of 1 atm NO and 1 atm of O 2. At equilibrium partial pressure of oxygen is found to be 0. 5 atm calculate K p value.v
Answer:2 NO(g) + O 2 (g) ⇌ 2NO 2 (g)
K p = \(\frac{\left(P_{N O_{2}}\right)^{2}}{\left(P_{N O}\right)^{2}\left(P_{O}\right)}\)
= \(\frac{0.96 \times 0.96}{0.04 \times 0.04 \times 0.52}\)
K p = 1.017 × 10 3.
Q.441 mol of CH 4, 1 mole of CS 2 and 2 mol of H 2 S are 2 mol of H 2 are mixed in a 500 ml flask. The equilibrium constant for the reaction K c = 4 x 10 -2 mol 2 lit -2. In which direction will the reaction proceed to reach equilibrium ?v
Answer::
CH 4 (g) + 2 H 2 S (g) ⇌ CS 2 (g) + 4H 2 (g)
K c = 4 x 10 -2 mol 2 lit -2
Volume = 500 ml = \(\frac{1}{2}\) L
[CH 4 ] in = \(\frac{1 \mathrm{~mol}}{\frac{1}{2} L}\) = 2 mol L -1;
[CH 2 ] in = \(\frac{1 \mathrm{~mol}}{\frac{1}{2} L}\) = 2 mol L -1
Q.45At particular temperature K c = 4 × 10 -2 for the reaction, H 2 S ⇌ 2H 2 (g) + S 2 (g). Calculate the K c for each of the following reaction.
i) 2H 2 S(g) ⇌ 2H 2 + S 2 (g)
ii) 3H 2 S(g) ⇌ 3H 2 (g) + 3/2 S 2 (g)v
Answer::
K c = 4 × 10 -2 for the reaction,
H 2 S ⇌ 2H 2 (g) + S 2 (g)
K c = \(\frac{\left[\mathrm{H}_{2}\right]\left[\mathrm{S}_{2}\right]^{1 / 2}}{\left[\mathrm{H}_{2} \mathrm{~S}\right]}\)
⇒ 4 × 10 -2 = \(\frac{\left[\mathrm{H}_{2}\right]\left[\mathrm{S}_{2}\right]^{1 / 2}}{\left[\mathrm{H}_{2} \mathrm{~S}\right]}\)
(i) 2H 2 S(g) ⇌ 2H 2 + S 2 (g)
For the reaction,
2H 2 S(g) ⇌ 2H 2 + S 2 (g)
K c = \(\frac{\left[\mathrm{H}_{2}\right]^{2}\left[\mathrm{~S}_{2}\right]}{\left[\mathrm{H}_{2} \mathrm{~S}\right]^{2}}\)
= (4 × 10 -2 ) 2 = 16 × 10 -4
(ii) 3H 2 S(g) ⇌ 3H 2 (g) + 3/2 S 2 (g)
For the reaction,
3H 2 S(g) ⇌ 3H 2 (g) + 3/2 S 2 (g)
K c = \(\frac{\left[\mathrm{H}_{2}\right]^{3}\left[\mathrm{~S}_{2}\right]^{3 / 2}}{\left[\mathrm{H}_{2} \mathrm{~S}\right]^{3}}\)
= (4 × 10 -2 ) 3 = 64 × 10 -6
Q.4628 g of Nitrogen and 6 g of hydrogen were mIed In a 1 litre closed container. At equIlibrium 17 g NH3 was produced. Calculate the weight of nitrogen, hydrogen at equilibrium.v
Answer:Given m N 2 =28g;
m H 2 = 6g;
V = 1 L.
(n N 2 ) initial = \(\frac{28}{28}\) = 1
(n H 2 ) initial = \(\frac{6}{2}\) = 3
N 2 (g) + 3 H 2 (g) ⇌ 2NH 3 (g)
[NH 3 ] = \(\frac{17}{17}\) = 1 mol
Weight of N 2 = (no. of moles of N 2 ) × (molar mass of N 2 )
= 0.5 × 28 = 14g
Weight of H 2 = (no. of moles of H 2 ) × (molar mass of H 2 )
= 1.5 × 2 = 3g
Q.47The equilibrium for the dissociation of XY 2 is given as,
2 XY 2 (g) ⇌ 2 XY(g) + Y 2 (g)
if the degree of dissociation x is so small compared to one. Show that 2 K p = PX 3 where P is the total pressure and K p is the dissociation equilibrium constant of XY 2.v
Answer:2 XY 2 (g) ⇌ 2 XY(g) + Y 2 (g)
Q.48A sealed container was filled with 0.3 mol H 2 (g), 0.4 mol I 2 (g) and 0.2 mol HI(g) at 800 K and total pressure 1.00 bar. Calculate the amounts of the components in the mixture at equilibrium given that K = 870 for the reaction, H 2 (g) + I 2 (g) ⇌ 2 HI (g).v
Answer:A 2 (g) + B 2 (g) ⇌ 2 AB (g)
Given that, K p = 1;
\(\frac{4 x^{2}}{(1-x)^{2}}\) = 1
⇒ 4x 2 = (1 – x) 2 = 1
⇒ 4x 2 = 1 + x 2 – 2x
3x 2 + 2x – 1 = 0
x = 0.33 – 1(not possible)
∴ [A 2 ] eq = 1 – x = 1 – 0.33 = 0.67
[B 2 ] eq = 1 – x = 1 – 0.33 = 0.67
[AB 2 ] eq = 2x × 0.33 = 0.66
Q.49Deduce the Vant Hoff equation.v
Answer:This equation gives that quantitative temperature dependence of equilibrium constant (K). The relation between standard free energy change (∆G°) and equilibrium constant is
∆G° = – RT In K ………………..(1)
We know that, ∆G° = ∆H° – T∆S° …………(2)
Substituting (1) in equation (2)
– RT In K = ∆H° – T∆S°
Rearranging, In K = \(\frac{\Delta \mathrm{H}^{0}}{\mathrm{RT}}+\frac{\Delta \mathrm{S}^{0}}{\mathrm{RT}}\) ……………(3)
Differentiating equation (3) with respect to temperature,
\(\frac{\mathrm{d}(\ln \mathrm{K})}{\mathrm{dT}}=\frac{\Delta \mathrm{H}^{0}}{\mathrm{RT}^{2}}\) ……………….(4)
Equation (4) is known as differential form of van,t Hoff equation.
On integrating the equation (4), between T 1 and T 2 with their respective equilbrium consatnts K 1 and K 2.
Equation 5 is known as integrated form of Van’t Hoff equation.
Q.50The equilibrium constant K p for the reaction N 2 (g) + 3H 2 (g) ⇌ 2NH 3 (g) is 8.19 × 10 2 at 298 K and 4.6 × 10 -1 at 498 K. Calculate ∆H° for the reaction.v
Answer::
K p 1 = 8.19 × 10 2;
T 1 = 298 K
K p 1 = 8.19 × 10 2;
T 1 = 298 K
K p 2 = 4.16 × 10 -1;
T 2 = 498 K
Q.51The partial pressure of carbon dioxide in the reaction CaCO 3 (s) ⇌ CaO(s) + CO 2 (g) is 1.017 × 10 -3 atm at 500°C. Calculate K p at 600°C for the reaction. H for the reaction is 181 KJ mol -1 and does not change in the given range of temperature.v
Answer:P CO 2 = 1.017 × 10 -3 atm
T = 500°C;
K p = P CO 2
∴ K p 1 = 1.017 × 10 -3;
T = 500 + 273 = 773 K
K p 2 = ?
T = 600 + 273 = 873 K
∆H° = 181 KJ mol -1