(a)
Interpretation:
The molar entropy
Concept Introduction:
Entropy is a
Entropy is the measure of randomness in the system. Standard entropy change in a reaction is the difference in entropy of the products and reactants.
Where,
Standard entropy change in a reaction and entropy change in the system are same.
(b)
Interpretation:
For the propylene formation reaction
Concept introduction:
Free energy is the term that is used to explain the total energy content in a thermodynamic system that can be converted into work. The free energy is represented by the letter G. All spontaneous process is associated with the decrease of free energy in the system. The equation given below helps us to calculate the change in free energy in a system.
Free energy change
Where,
(c)
Interpretation:
For the dehydrogenation reaction the enthalpy
Concept Introduction:
Enthalpy is the amount energy absorbed or released in a process.
The enthalpy change in a system
Where,
Free energy is the term that is used to explain the total energy content in a thermodynamic system that can be converted into work. The free energy is represented by the letter G. All spontaneous process is associated with the decrease of free energy in the system. The equation given below helps us to calculate the change in free energy in a system.
(d)
Interpretation:
For the formation of propylene theoretical yield has to be calculated at
Concept introduction:
Entropy is the measure of randomness in the system. Standard entropy change in a reaction is the difference in entropy of the products and reactants.
Where,
Free energy is the term that is used to explain the total energy content in a thermodynamic system that can be converted into work. The free energy is represented by the letter G. All spontaneous process is associated with the decrease of free energy in the system. The equation given below helps us to calculate the change in free energy in a system.
(e)
Interpretation:
Identify whether there is any yield change if the reactor wall were preamble to hydrogen
Concept introduction:
Theoretical yield: The amount of product formed, assuming complete reaction of the limiting reagent.
Actual yield: The amount of product actually formed in a reaction.
Percent yield: The percentage of the theoretical yield actually obtained from a
(f)
Interpretation:
The temp at which the dehydrogenation spontaneous has to be identified, provided all substances in the standard state.
Concept introduction:
Entropy is a thermodynamic quantity, which is the measure of randomness in a system. The term entropy is useful in explaining the spontaneity of a process. For all spontaneous process in an isolated system there will be an increase in entropy. Entropy is represented by the letter ‘S’. It is a state function. The change in entropy gives information about the magnitude and direction of a process. The entropy changes associated with a phase transition reaction can be found by the following equation.
Where,
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Chapter 20 Solutions
CHEMISTRY: MOLECULAR...(LLF) W/CONNECT
- Br HO ? HO ✓ OHarrow_forwardUse the literature Ka value of the acetic acid, and the data below to answer these questions. Note: You will not use the experimental titration graphs to answer the questions that follow. Group #1: Buffer pH = 4.35 Group #2: Buffer pH = 4.70 Group #3: Buffer pH = 5.00 Group #4: Buffer pH = 5.30 Use the Henderson-Hasselbalch equation, the buffer pH provided and the literature pKa value of acetic acid to perform the following: a) calculate the ratios of [acetate]/[acetic acid] for each of the 4 groups buffer solutions above. b) using the calculated ratios, which group solution will provide the best optimal buffer (Hint: what [acetate]/[acetic acid] ratio value is expected for an optimal buffer?) c) explain your choicearrow_forwardHow would you prepare 1 liter of a 50 mM Phosphate buffer at pH 7.5 beginning with K3PO4 and 1 M HCl or 1 M NaOH? Please help and show calculations. Thank youarrow_forward
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