Answer:
![V=37.05\ L](https://img.qammunity.org/2021/formulas/chemistry/college/y3gerkva9vrtowx0lpohrwibmiu6hl7kju.png)
Step-by-step explanation:
Given that:
Mass of
, m = 45.0 g
Molar mass of
, M = 30.01 g/mol
Temperature = 20.0 °C
The conversion of T( °C) to T(K) is shown below:
T(K) = T( °C) + 273.15
So,
T₁ = (20.0 + 273.15) K = 293.15 K
V = ?
Pressure = 740 mm Hg
Considering,
Using ideal gas equation as:
where,
P is the pressure
V is the volume
m is the mass of the gas
M is the molar mass of the gas
T is the temperature
R is Gas constant having value = 62.36367 L. mmHg/K. mol
Applying the values in the above equation as:-
![740V=(822685.94372)/(30.01)](https://img.qammunity.org/2021/formulas/chemistry/college/rmbqezvgdvdxk8f4vp2xjdximmewnwgcnh.png)
![V=37.05\ L](https://img.qammunity.org/2021/formulas/chemistry/college/y3gerkva9vrtowx0lpohrwibmiu6hl7kju.png)