Answer :
Answer:
114 K
Explanation:
Given data
- Volume of oxygen (V): 629 mL = 0.629 L
- Pressure of oxygen (P): 0.500 atm
- Moles of oxygen (n): 0.0337 mol
- Temperature (T): ?
We can calculate the temperature at which the student collected the oxygen using the ideal gas equation.
[tex]P \times V = n \times R \times T\\T = \frac{P \times V}{n \times R} = \frac{0.500atm \times 0.629L}{0.0337mol \times 0.0821atm.L/mol.K} = 114 K[/tex]
The oxygen gas was collected at 114 K.
Answer:
The temperature is 114 K or -159ºC
Explanation:
We must use the ideal gas equation to calculate the temperature in K:
P x V = n x R x T
⇒ T = (P x V)/(n x R)
We have to introduce the data expressed in the adequate units:
V = 629 ml x 1 L/1000 ml= 0.629 L
n = 0.0337 moles
P = 0.500 atm
R = 0.082 L.atm/K.mol (it is the gas constant)
T = (P x V)/(n x R) = (0.500 atm x 0.629 L)/(0.0337 mol x 0.082 L.atm/K.mol)
T = 113.8 K ≅ 114 K
Thus, the temperature is 114 K or -159ºC.