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#35 | Relation between ΔGo & Keq : II
(Chemistry) > Thermodynamics

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In the reaction, both ∆H and ∆S are positive. The condition(s) under which the reaction would not be spontaneous are/is:

1. ∆H>T∆S                             

2. ∆S=∆H/T

3. ∆H=T∆S                               

4. All of the above

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'The free energy change due to a reaction is zero when-

1. The reactants are initially mixed.

2.  A catalyst is added

3. The system is at equilibrium

4. The reactants are completely consumed

 89%
Level 1: 80%+
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18 g of ice is converted into water at 0°C and 1 atm. The entropy of H2O(s) and H2O(l) are 38.2 and 60 J K-1 mol-1 respectively. the enthalpy for this conversion will be

(1) 5951.4 J/mol

(2) 595.14 J/mol

(3) -595.14 J/mol

(4) None of these

 67%
Level 2: 60%+
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For a given reaction, if ΔH = 35.5 kJ/mol and ΔS = 83.6 J/K·mol, at what temperature is the reaction spontaneous?
(Assume ΔH and ΔS remain constant with temperature.)

1. T < 425 K 2. T > 425 K
3. All temperatures 4. T > 298 K
 75%
Level 2: 60%+
NEET - 2017
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Find the thermodynamic condition required for a reaction to be spontaneous at all temperatures.

1. ΔH > 0 and ΔS < 0
2. ΔH < 0 and ΔS > 0
3. ΔH < 0 and ΔS < 0
4. ΔH > 0 and ΔS > 0
 80%
Level 1: 80%+
NEET - 2016
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