Answer:
48 grams of O₂ occupy 33.6L at STP
Explanation:
Let's apply Ideal Gases Law to this situation:
STP = Standard conditions of T° and pressure
T° = 273K
Pressure = 1 atm
P .V = n . R . T
1 atm . 33.6L = n . 0.082 . 273K
(1 atm . 33.6L) / (0.082 . 273K) = n
1,50 moles = n
Now, we must find out the mass of O₂ with the molar mass
Molar mass . moles = Mass
32 g/m . 1.5 moles = 48 g
