Respuesta :
Answer : The volume of [tex]CO_2[/tex] in Reaction 1 = 240.45 ml
The volume of [tex]CO_2[/tex] in Reaction 2 = 480.89 ml
Solution : Given,
Temperature = [tex]170^oC=170+273=443K[/tex] ([tex]1^oC=273K[/tex])
Pressure = 0.900 atm
The mass of [tex]NaHCO_3[/tex] = 1 gram
Molar mass of [tex]NaHCO_3[/tex] = 84.007 g/mole
The given reactions are,
Reaction 1 : [tex]2NaHCO_3(s)\rightarrow Na_2CO_3(s)+H_2O(l)+CO_2(g)[/tex]
Reaction 2 : [tex]NaHCO_3(s)+H^+(aq)\rightarrow H_2O(l)+CO_2(g)+Na^+(aq)[/tex]
- Calculation for Reaction 1 :
First we have to calculate the moles of [tex]NaHCO_3[/tex].
Moles of [tex]NaHCO_3[/tex] = [tex]\frac{1g}{84.007g/mole}=0.0119moles[/tex]
From the Reaction 1, we conclude that
2 moles of [tex]NaHCO_3[/tex] gives 1 mole of [tex]CO_2[/tex]
0.0119 moles of [tex]NaHCO_3[/tex] gives [tex]\frac{1mole}{2moles}\times 0.0119moles=0.00595moles[/tex] of [tex]CO_2[/tex]
Using ideal gas equation :
[tex]PV=nRT\\V=\frac{nRT}{P}[/tex]
where,
P = pressure of gas
V = volume of gas
n = Number of moles
T = temperature of gas
R = gas constant = 0.0821 L atm/mole K
Now put all the given values in ideal gas law, we get the volume of [tex]CO_2[/tex]
[tex]V=\frac{(0.00595mole)\times (0.0821Latm/moleK)\times 443K}{0.900atm}=0.24045L=240.45ml[/tex]
The volume of [tex]CO_2[/tex] in Reaction 1 is 240.45 ml
- Calculation for Reaction 2 :
The moles of [tex]NaHCO_3[/tex] = 0.0119 moles
From the Reaction 2, we conclude that
1 moles of [tex]NaHCO_3[/tex] gives 1 mole of [tex]CO_2[/tex]
So, the moles of [tex]CO_2[/tex] = the moles of [tex]NaHCO_3[/tex] = 0.0119 moles
Using ideal gas equation,
[tex]PV=nRT\\V=\frac{nRT}{P}[/tex]
Now put all the given values in ideal gas law, we get the volume of [tex]CO_2[/tex]
[tex]V=\frac{(0.0119mole)\times (0.0821Latm/moleK)\times 443K}{0.900atm}=0.48089L=480.89ml[/tex]
The volume of [tex]CO_2[/tex] in Reaction 2 is 480.89 ml
