Estimate the temperature range over which each of the following reactions is spontaneous.
(a)
(b)
(c)
(d)
Interpretation:
The temperature range over which the reaction
Concept introduction:
A process which happens without any outward intervention is recognized as the spontaneous process. As per the 2nd law of thermodynamics, that states the universe’s entropy rises for any spontaneous process.
A process which happens when pressure and temperature both are constant, the determination of spontaneity can be done using Gibbs free energy:
Here, a sign of
Answer to Problem 10.75PAE
Solution:
The reaction will be spontaneous for temperature higher than 647 K.
Explanation of Solution
In the given reaction due to the presence of more number of moles of gas in the product, the change in entropy is estimated as positive, and due to the presence of more number of bonds in the product compared to the reactant, the enthalpy is also positive because in products bonds are formed more than the reactants.
First, calculate the change in enthalpy by subtracting all of the product enthalpies from the reactant enthalpies:
In next step, find the change in entropy after subtracting all the product entropies from the reactant entropies:
In the final step, using Gibbs free energy form the first section to find the temperature of spontaneity. Spontaneous reactions occur when the change in Gibb’s free energy is less than zero which means that energy is released from the system.
To find out the range of the temperature which can cause the negative change in
This temperature is the cutoff for temperatures for spontaneity. All temperatures higher than this temperature will result in spontaneous reaction because of the larger contribution from entropy which has a positive sign. Therefore, the reaction will be spontaneous for temperature higher than
Interpretation:
The temperature range over which the reaction
Concept introduction:
A process which happens without any outward intervention is recognized as the spontaneous process. As per the 2nd law of thermodynamics, that states the universe’s entropy rises for any spontaneous process.
A process which happens when pressure and temperature both are constant, the determination of spontaneity can be done using Gibbs free energy:
Here, a sign of
Answer to Problem 10.75PAE
Solution:
There are no temperatures that this reaction will be spontaneous.
Explanation of Solution
The first change in enthalpy will be calculated after subtracting product enthalpies from the reactant enthalpies.
In next step find the entropy change by subtracting product entropies from the reactant entropies.
In the final step using the expression for Gibb’s free energy from the first section to find the temperature of spontaneity. Spontaneous reactions occur when the change in Gibb’s free energy is less than zero, meaning that energy is released from the system
The reaction will be never being spontaneous because all temperatures are positive, meaning that
Interpretation:
The temperature range over which the reaction
Concept introduction:
A process which happens without any outward intervention is recognized as the spontaneous process. As per the 2nd law of thermodynamics, that states the universe’s entropy rises for any spontaneous process.
A process which happens when pressure and temperature both are constant, the determination of spontaneity can be done using Gibbs free energy:
Here, a sign of
Answer to Problem 10.75PAE
Solution:
The temperature must be greater than 201.20 K for the reaction to be spontaneous
Explanation of Solution
This reaction is the opposite of a formation reaction because a compound is split into its elemental states. The following equation is the balanced overall reaction:
According, the change in entropy for the formation of phosphine can be found in a table of common values:
Next, calculate the change in entropy by subtracting all the product entropies from the reactant entropies:
Plugging the values for the reactants and products as found in the table of common thermodynamic values. Multiply each product or reactant through its coefficient listed in the overall balanced reaction.
Then the standard Gibbs free energy of reaction is: -
For the reaction to be spontaneous,
So, the temperature must be greater than 201.20 K for the reaction to be spontaneous.
Want to see more full solutions like this?
Chapter 10 Solutions
Bundle: Chemistry for Engineering Students, 3rd, Loose-Leaf + OWLv2 with Quick Prep and Student Solutions Manual 24-Months Printed Access Card
- Please correct answer and don't used hand raitingarrow_forwardPlease correct answer and don't used hand raitingarrow_forward(a) The following synthesis of the molecule shown in the circle has a major problem. What is this problem? (2 pts) 1) HBr (no peroxides) 2) H- NaNH2 Br 3) NaNH, 4) CH3Br 5) H2, Pd (b) Starting with the molecule shown below and any other materials with two carbons or less, write out an alternate synthesis of the circled molecule. More than one step is needed. Indicate the reagent(s) and the major product in all the steps in your synthesis. (5 pts) 2024 Fall Term (1) Organic Chemistry 1 (Lec) CHEM 22204 02[6386] (Hunter College) (c) Using the same starting material as in part (b) and any other materials win two carpons or less, write out syntheses of the circled molecules shown below. More than one step is needed in each case. Indicate the reagent(s) and the major product in all the steps in your synthesis. You may use reactions and products from your synthesis in part (b). (5 pts)arrow_forward
- alt ons for Free Response Questions FRQ 1: 0/5 To spectrophotometrically determine the mass percent of cobalt in an ore containing cobalt and some inert materials, solutions with known [Co?) are prepared and absorbance of each of the solutions is measured at the wavelength of optimum absorbance. The data are used to create a calibration plot, shown below. 0.90- 0.80- 0.70 0.60 0.50 0.40- 0.30 0.20- 0.10- 0.00- 0.005 0.010 Concentration (M) 0.015 A 0.630 g sample of the ore is completely dissolved in concentrated HNO3(aq). The mixture is diluted with water to a final volume of 50.00 ml. Assume that all the cobalt in the ore sample is converted to Co2+(aq). a. What is the [Co2] in the solution if the absorbance of a sample of the solution is 0.74? 13 ✗ b. Calculate the number of moles of Co2+(aq) in the 50.00 mL solution. 0.008 mols Coarrow_forwardPlease correct answer and don't used hand raitingarrow_forwardCloso-boranes and arachno-boranes are structures that exhibit B-B, B-H-B, and B-H bonds. Correct?arrow_forward
- General Chemistry - Standalone book (MindTap Cour...ChemistryISBN:9781305580343Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; DarrellPublisher:Cengage LearningChemistry: Principles and PracticeChemistryISBN:9780534420123Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward MercerPublisher:Cengage LearningChemistry: The Molecular ScienceChemistryISBN:9781285199047Author:John W. Moore, Conrad L. StanitskiPublisher:Cengage Learning
- Chemistry & Chemical ReactivityChemistryISBN:9781133949640Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage LearningPrinciples of Modern ChemistryChemistryISBN:9781305079113Author:David W. Oxtoby, H. Pat Gillis, Laurie J. ButlerPublisher:Cengage LearningChemistryChemistryISBN:9781305957404Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCostePublisher:Cengage Learning