Tungsten is usually produced by the reduction of WO 3 with hydrogen: WO 3 ( s ) + 3 H 2 ( g ) → W ( s ) + 3 H 2 O ( g ) Consider the following data: WO 3 ( s ) H 2 O( g ) Δ H f ° ( kJ/mol ) −839.9 −241.8 Δ G f ° ( kJ/mol ) −763–1 −228.6 a It K > 1 or < 1 at 25°C? Explain your answer. b What is the value of Δ S ° at 25°C? c What is the temperature at which Δ G ° equals zero for this reaction at 1 atm pressure? d What is the driving force of this reaction?
Tungsten is usually produced by the reduction of WO 3 with hydrogen: WO 3 ( s ) + 3 H 2 ( g ) → W ( s ) + 3 H 2 O ( g ) Consider the following data: WO 3 ( s ) H 2 O( g ) Δ H f ° ( kJ/mol ) −839.9 −241.8 Δ G f ° ( kJ/mol ) −763–1 −228.6 a It K > 1 or < 1 at 25°C? Explain your answer. b What is the value of Δ S ° at 25°C? c What is the temperature at which Δ G ° equals zero for this reaction at 1 atm pressure? d What is the driving force of this reaction?
Tungsten is usually produced by the reduction of WO3 with hydrogen:
WO
3
(
s
)
+
3
H
2
(
g
)
→
W
(
s
)
+
3
H
2
O
(
g
)
Consider the following data:
WO3(s)
H2O(g)
Δ
H
f
°
(
kJ/mol
)
−839.9
−241.8
Δ
G
f
°
(
kJ/mol
)
−763–1
−228.6
a It K > 1 or < 1 at 25°C? Explain your answer.
b What is the value of ΔS° at 25°C?
c What is the temperature at which ΔG° equals zero for this reaction at 1 atm pressure?
d What is the driving force of this reaction?
(a)
Expert Solution
Interpretation Introduction
Interpretation:
For the given reaction, the value of K,ΔSo, the temperature at which the free energy changes is equal to zero and the driving force for the reaction has to be given.
Concept introduction:
Standard free energy change:
Standard free energy change is measured by subtracting the product of temperature and standard entropy change from the standard enthalpy change of a system.
The sign of free energy change (ΔGo) is positive (ΔG>0). Hence, K will be less than 1.
(b)
Expert Solution
Interpretation Introduction
Interpretation:
For the given reaction, the value of K,ΔSo, the temperature at which the free energy changes is equal to zero and the driving force for the reaction has to be given.
Concept introduction:
Standard free energy change:
Standard free energy change is measured by subtracting the product of temperature and standard entropy change from the standard enthalpy change of a system.
For the given reaction, the value of K,ΔSo, the temperature at which the free energy changes is equal to zero and the driving force for the reaction has to be given.
Concept introduction:
Standard free energy change:
Standard free energy change is measured by subtracting the product of temperature and standard entropy change from the standard enthalpy change of a system.
For the given reaction, the value of K,ΔSo, the temperature at which the free energy changes is equal to zero and the driving force for the reaction has to be given.
Concept introduction:
Standard free energy change:
Standard free energy change is measured by subtracting the product of temperature and standard entropy change from the standard enthalpy change of a system.
Topic: Photochemistry and Photophysics of Supramolecules
Two cations that exchange an electron in an interface, the exchange density is worth 1.39 mA/cm2 and the current density is worth 15 mA/cm2 at 25°C. If the overvoltage is 0.14 V, calculate the reaction rate and symmetry factor. Data: R = 8,314 J mol-1 k-1: F = 96500 C
With the help of the Tafel line, it is estimated that the interchange density of the VO2+/VO2+ system on the carbon paper has a value of 3 mA cm-2. Calculate a) the current density if the voltage has a value of 1.6 mV and the temperature is 25°C. b) the beta value of the anódico process if the Tafel pendulum is 0.6 V at 25°C. Data: R = 8.314 JK-1mol-1, y F = 96485 C mol-1.
Chapter 18 Solutions
OWLv2 for Ebbing/Gammon's General Chemistry, 11th Edition, [Instant Access], 1 term (6 months)
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The Laws of Thermodynamics, Entropy, and Gibbs Free Energy; Author: Professor Dave Explains;https://www.youtube.com/watch?v=8N1BxHgsoOw;License: Standard YouTube License, CC-BY