Ideal gas law states
PV = n(RT)
V is volume (L), P is pressure (atm), R is universal gas constant: 0.0821 L·atm/mol· K, n is number of moles, T is temperature in Kelvin
Here given:
mass of O₂ : 100 gram
moles: mass/molar mass = 100/32 = 3.125 moles
25.0 °C = (25+273.15) = 298.15 K
pressure: 1.25 atm
Volume:
![\boxed{\sf V=(nRT)/(P)}](https://img.qammunity.org/2023/formulas/chemistry/high-school/a3ji5g19q7326z1z690sqeu165664p57ir.png)
![\Rightarrow \sf V=((3.125 \ x \ 0.0821 \ x \ 298.15 ))/(1.25)](https://img.qammunity.org/2023/formulas/chemistry/high-school/6oabjj20s658iy8d3irra699fbyjl7skdj.png)
![\Rightarrow \sf V=61.195 \ L](https://img.qammunity.org/2023/formulas/chemistry/high-school/kp5t6x7k1c6t2nzl1o4xzpjaxwbla7astz.png)
![\Rightarrow \sf V=61.2 \ L \ \ \ (rounded \ to \ nearest \ tenth)](https://img.qammunity.org/2023/formulas/chemistry/high-school/xwepfzuajl1t27gv8wpu8ywqg24uchmq6l.png)
Additional Explanation:
- Volume can be counted in multiple units.
In Liters: 61.2 Liters
In cubic meter: 0.061163 m³
In cubic centimeter: 61,163.5 cm³