To find the pressure, we can use the ideal gas law equation:
PV = nRT
Where: P = pressure V = volume (in this case, 0.4 L) n = number of moles R = ideal gas constant (0.0821 L·atm/(mol·K)) T = temperature (in this case, 200 K)
First, we need to calculate the number of moles (n) using the given information:
M = 2.4 M = 4 * 10^-2
To find the number of moles (n), we can rearrange the equation as follows: M = n / V n = M V n = (2.4) (0.4) n = 0.96 moles
Now, we can plug the values into the ideal gas law equation:
P 0.4 = 0.96 0.0821 * 200
P * 0.4 = 15.8448
P = 15.8448 / 0.4 P = 39.612 atm
Therefore, the pressure in this system is 39.612 atm.
To find the pressure, we can use the ideal gas law equation:
PV = nRT
Where:
P = pressure
V = volume (in this case, 0.4 L)
n = number of moles
R = ideal gas constant (0.0821 L·atm/(mol·K))
T = temperature (in this case, 200 K)
First, we need to calculate the number of moles (n) using the given information:
M = 2.4
M = 4 * 10^-2
To find the number of moles (n), we can rearrange the equation as follows:
M = n / V
n = M V
n = (2.4) (0.4)
n = 0.96 moles
Now, we can plug the values into the ideal gas law equation:
P 0.4 = 0.96 0.0821 * 200
P * 0.4 = 15.8448
P = 15.8448 / 0.4
P = 39.612 atm
Therefore, the pressure in this system is 39.612 atm.