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For the reaction, 2N2g+O2g2N2O(g), at 298K H is 164 kJ mol-1. The E of the reaction is-
1. \(166.5 \mathrm{~kJ} \mathrm{~mol}^{-1} \)
2. \(141.5 \mathrm{~kJ} \mathrm{~mol}^{-1} \)
3. \(104.0 \mathrm{~kJ} \mathrm{~mol}^{-1} \)
4. \(-169 \mathrm{~kJ} \mathrm{~mol}^{-1}\)

Subtopic:  Enthalpy & Internal energy |
 78%
Level 2: 60%+
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The bond energies of CC, C-H, H-H, and C=C are 198, 98, 103, and 145 kcal respectively.

The enthalpy change of the reaction HCCH+H2C2H4 would be:

1. 48 kcal

2. 96 kcal

3. -40 kcal

4. -152 kcal

Subtopic:  Enthalpy & Internal energy |
 78%
Level 2: 60%+
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Which among the following state functions is an extensive property of the system?

1. Temperature 2. Volume
3. Refractive index 4. Viscosity
Subtopic:  Classification of System, Extensive & Intensive Properties |
 82%
Level 1: 80%+
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In an isothermal change, an ideal gas obeys:

1. Boyle's law 2. Charles law
3. Gay-Lussac law 4. None of the above
Subtopic:  Basic Terms |
 87%
Level 1: 80%+
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For a sample of a perfect gas when its pressure is changed isothermally from Pi to Pf, the entropy change is given by:

1. s=nR In pfpi

2. s=nR In pipf

3. s=nRT In pfpi

4. s=RT In pipf

Subtopic:  Spontaneity & Entropy |
 73%
Level 2: 60%+
NEET - 2016
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For a given reaction, ∆H = 35.5 kJ mol–1 and ∆S = 83.6 J K–1 mol–1. The reaction is spontaneous at:
[Note: Assume that ∆H and ∆S  do not vary with temperature]

1. T > 425K
2. All temperatures
3. T > 298K
4. T < 425K

Subtopic:  Gibbs Energy Change |
 76%
Level 2: 60%+
NEET - 2017
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The bond dissociation energies of X2,Y2 and XY are in the ratio of 1 : 0.5 : 1. ∆H for the formation of XY is –200 kJ mol–1. The bond dissociation energy of X2 will be

1. 200 kJ mol–1
2. 100 kJ mol–1
3. 800 kJ mol–1
4. 400 kJ mol–1

Subtopic:  Thermochemistry |
Level 3: 35%-60%
NEET - 2018
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The correct thermodynamic conditions for a spontaneous reaction at all temperatures is:
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 heat of combustion of carbon to CO2 is –393.5 KJ/mol. The heat released upon the formation of 35.2 g of CO2 from carbon and oxygen gas is:
1. –315 KJ
2. +315 KJ
3. –630 KJ
4. +630 KJ

Subtopic:  Thermochemistry |
 75%
Level 2: 60%+
NEET - 2015
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Which of the following statements is correct for the spontaneous adsorption of a gas?

1. ∆ S is negative and therefore,  ∆ H should be highly positive
2. ∆ S is negative and therefore,  ∆ H should be highly negative
3. ∆ S is positive and therefore,  ∆ H should be negative
4. -∆ S is positive and therefore,  ∆ H should also be highly positive

Subtopic:  Adsorption and Absorption |
 55%
Level 3: 35%-60%
AIPMT - 2014
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