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A system that can neither exchange matter nor energy with its surroundings is classified as:

1. Open system

2. Isolated system

3. Closed system

4. Both (1) & (2)

Subtopic:  Classification of System, Extensive & Intensive Properties |
 91%
Level 1: 80%+
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The standard enthalpies of the formation of  NO2(g) and N2O4(g) are 8 kcal mol–1 and 2 kcal mol–1 respectively. The heat of dimerization of NO2 in the gaseous state is: 

1. 10 k cal mol–1 2. 6.0 k cal mol–1
3. –14 k cal mol–1 4. –6.0 k cal mol–1
Subtopic:  Thermochemistry |
 68%
Level 2: 60%+
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What is the correct thermodynamic conditions for a spontaneous reaction at all temperatures?
1. ∆H > 0 and ∆S< 0
2. ∆H < 0 and ∆S> 0
3. ∆H < 0 and ∆S< 0
4. ∆H > 0 and ∆S = 0
Subtopic:  Gibbs Energy Change |
 85%
Level 1: 80%+
NEET - 2016
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The standard enthalpy of vaporization ∆vapHo for water at 100 oC is 40.66 kJ mol–1. The internal energy of vaporization of water at 100 oC (in kJ mol–1) is: 
(Assume water vapour behaves like an ideal gas.)

1. +37.56 2. –43.76
3. +43.76 4. +40.66
Subtopic:  Enthalpy & Internal energy |
 61%
Level 2: 60%+
AIPMT - 2012
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Under the isothermal condition, a gas at \(300 \mathrm{~K}\) expands from \(0.1 \mathrm{~L}\) to \(0.25 \mathrm{~L}\) against a constant external pressure of 2 bar. The work done by the gas is:

1. \(30 ~\mathrm {J} \) 2. \(-30 ~\mathrm{J} \)
3. \(5~ \mathrm{kJ}\) 4. \(25~ \mathrm{J}\)
Subtopic:  2nd & 3rd Law of Thermodynamics |
 81%
Level 1: 80%+
NEET - 2019
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For the isothermal reversible expansion of an ideal gas: 

1. ∆H>0and∆U=0

2. ∆H>0and∆U<0

3. ∆H=0and∆U=0

4. ∆H=0and∆U>0

Subtopic:  Enthalpy & Internal energy |
 58%
Level 3: 35%-60%
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Identify correct match using Column I & Column II
Column I Column II
(i) Spontaneous process (a) Isothermal and isobaric process
(ii) \(\Delta H^\circ\) (b) \(\Delta H<0 \)
(iii) \(\Delta T=0, \Delta P=0 \) (c) \(\Delta G<0 \)
(iv) Exothermic process (d) (Bond energy of reactant) - (Bond energy of product)
 
I II III IV
1. c d a b
2. b a c d
3. d b c d
4. a d b c
Subtopic:  First Law of Thermodynamics | Spontaneity & Entropy | Gibbs Energy Change |
 94%
Level 1: 80%+
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If bond enthalpies of \(C-C,C-H,O=O,C=O \) and \(O-H \) are
a, b, c, d, and e respectively, then the heat of combustion of ethane will be:
1.  \(6 b+\frac{7}{2} c+a-2 d-3e \)
2.  \(b+c+a-4 d-3e \)
3.  \(6 b+\frac{7}{2} c+a-4 d-6e \)
4.  \(6 b+7 c+a-4 d-6e \)
Subtopic:  Thermochemistry |
 77%
Level 2: 60%+
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The incorrect statement(s) among the following statements is/are:

(i) When liquid crystallizes into a solid, entropy increases.
(ii) When the temperature of a crystalline solid is raised from 0 K to 115 K then entropy increases.
(iii) 2 NaHCO3 (s) →Na2CO3 (s) +CO2(g)+H2O(g); Entropy  increases.
(iv) H2(g)→2H(g) ; Entropy  decreases.


1. (i), (iv)
2. (ii), (iv)
3. (iii), (iv)
4. (i), (iii)

Subtopic:  Spontaneity & Entropy |
 83%
Level 1: 80%+
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In an exothermic reaction, heat is evolved, and the system loses heat to the surrounding. The correct choice among the following for such a system are-

(a) qp will be negative

(b) ∆rH will be negative

(c) qp will be positive

(d) ∆rH will be positive

1. (a, b)

2. (b, c)

3. (c, d)

4. (a, d)

Subtopic:  Enthalpy & Internal energy |
 77%
Level 2: 60%+
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