Can someone please help me with this one question? Which values from the reaction equations do I use?
Ozone is depleted in the stratosphere by chlorine from CF3Cl according to these equations:
CF3Cl + UV light
CF3 + Cl
Cl + O3
ClO + O2
O3 + UV light
O2 + O
ClO + O
Cl + O2
What volume of ozone at pressure 29.0mmHg and temp 216K can be destroyed when all of the chlorine from 10.0g of CF3Cl goes through 10 cycles of the reactions above?
Here are the converstions I got so far:
P= 29.0mmHg = 0.0382atm
T= 216K
molar mass of CF3Cl = 104.46mol
10gCF3Cl = 0.0957molCF3Cl
I know I'll use the ideal gas law to solve for the volume of O3. I'm just confused on how to fit the data from the equations in.