Concept explainers
(a)
Interpretation:
By burning sulfur with oxygen sulfur trioxide can be prepared:
A 5.00 L flask having 5 g of oxygen and sulfur at a temperature of 25 0C and pressure of 995 mm Hg is heated. The temperature in the flask increases to 138 0C after the completion of reaction. The pressure of SO3 in the flask needs to be calculated.
Concept introduction:
According to the
The molarity of the solution is calculated as follows:
Here, n is number of moles of solute and V is volume of solution in L.

Answer to Problem 91QAP
1.05 atm
Explanation of Solution
By burning sulfur with oxygen sulfur trioxide can be prepared
In the 5 g of sulfur the mole of sulfur present is:
Moles of sulfur reacted is 0.156 mol.
Similarly, number of moles of oxygen can be calculated using the ideal gas equation as follows:
The given pressure can be converted into atm as follows:
Thus,
The given temperature can be converted into Kelvin as follows:
Thus,
Putting the values,
From the balanced chemical reaction, 2 mol of S must react with 3 mol of
The number of moles of oxygen gas given is 0.268 mol thus, it is present in excess and the sulfur is limiting reactant.
The number of moles of SO3 produced is same as that of sulfur.
After completion of reaction, the volume is 5.00 L, temperature is 138 0C and the pressure in the flask due to SO3 is calculated as below:
Therefore, the pressure of SO3 is 1.05 atm.
(b)
Interpretation:
The total pressure in the flask needs to be determined.
Concept introduction:
The ideal gas equation is as follows:
Here, P is pressure, V is volume, n is number of moles, R is Universal gas constant and T is temperature.

Answer to Problem 91QAP
1.27 atm.
Explanation of Solution
The molar ratio of O2 :S is 3:2. The moles of oxygen used to react with 0.156 mol of sulfur are calculated as below:
Therefore, the moles of O2 used in 0.156 mol of sulfur are 0.234 mol.
The pressure in the flask prior the reaction is 995 mm Hg. The moles of O2 present initially a 25 0C are calculated as below:
Therefore, mole of oxygen present in the mixture is 0.268 mol.
The oxygen which is left unreacted is calculated as below:
The total number of moles in the flask =
The total number of moles in the flask is 0.190 mol.
The total pressure of gas in the flask due to SO3 and unreacted oxygen is calculated as
Therefore, the total pressure in the flask is 1.27 atm.
(c)
Interpretation:
The molarity of H2 SO4 formed if 250.0 mL is added into the flask needs to be determined.
Concept introduction:
According to the ideal
The molarity of the solution is calculated as follows:
Here, n is number of moles of solute and V is volume of solution in L.

Answer to Problem 91QAP
0.03 M.
Explanation of Solution
The volume of the flask containing SO3 is 5.00 L, if 250.0 mL of water is added, the total volume of solution becomes:
The molarity of solution is calculated as follows:
The moles of SO3 is 0.156 mol. The molarity of H2 SO4 is calculated as below:
Therefore, the molarity of H2 SO4 is 0.03 M.
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Chapter 5 Solutions
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