Answer: The molecular formula of the compound is
![C_2F_2](https://img.qammunity.org/2021/formulas/chemistry/college/dtvczvx598lv2r8ysac4yftdknnr5lgim1.png)
Step-by-step explanation:
If percentage are given then we are taking total mass is 100 grams.
So, the mass of each element is equal to the percentage given.
Mass of C= 38.734 g
Mass of F = 61.266 g
Step 1 : convert given masses into moles.
Moles of C =
Moles of F =
![\frac{\text{ given mass of F}}{\text{ molar mass of F}}= (61.266g)/(19g/mole)=3.2245moles](https://img.qammunity.org/2021/formulas/chemistry/college/pqdsjn9twwk12o40l1hm7namp7jm7zctt9.png)
Step 2 : For the mole ratio, divide each value of moles by the smallest number of moles calculated.
For C =
![(3.2278)/(3.2245)=1](https://img.qammunity.org/2021/formulas/chemistry/college/sz5glbtzvp130i291siou52h4t8mj5zpxl.png)
For F =
![(3.2245)/(3.2245)=1](https://img.qammunity.org/2021/formulas/chemistry/college/jqjwgqaf9qlu1ffb5wpy4v5rwzh5l9ds4m.png)
The ratio of C : F = 1:1
Hence the empirical formula is
![CF](https://img.qammunity.org/2021/formulas/chemistry/college/3j5eoarqtclhmnrnyqh9hmi6pes3vtd832.png)
The empirical weight of
= 1(12)+1(19)= 31 g.
Using ideal gas equation :
![PV=nRT](https://img.qammunity.org/2021/formulas/physics/high-school/xmnfk8eqj9erqqq8x8idv0qbm03vnipq7i.png)
where,
n = number of moles of gas = ?
P = pressure of the gas = 1.10 atm
T = temperature of the gas = 288.0 K
R = gas constant = 0.0821 L.atm/mole.K
V = volume of gas = 10.0 mL =0.01 L
![1.10* 0.01=n* 0.0821* 288.0](https://img.qammunity.org/2021/formulas/chemistry/college/u427b8jcfw0vvqx8ffd13xfiw7q7k2z5r2.png)
![n=4.65* 10^(-4)](https://img.qammunity.org/2021/formulas/chemistry/college/g01zh6td2lh2j3r4c03l4ydeirhg1xhez4.png)
![n=\frac{\text {given mass}}{\text {Molar mass}}](https://img.qammunity.org/2021/formulas/chemistry/college/w020jghyjcieih0dmxcnm15o4cytfxurv6.png)
![4.65* 10^(-4)=\frac{0.02887}{\text {Molar mass}}](https://img.qammunity.org/2021/formulas/chemistry/college/8lm8djjstt0d8vmc2botxpnx0zvvjpey58.png)
![{\text {Molar mass}}=62.0](https://img.qammunity.org/2021/formulas/chemistry/college/in7t27wkgymkokwswl3gj6w6ywunk9p72t.png)
Now we have to calculate the molecular formula.
![n=\frac{\text{Molecular weight}}{\text{Equivalent weight}}=(62.0)/(31.0)=2](https://img.qammunity.org/2021/formulas/chemistry/college/62r1rehv5ozirx31idcldor6to8q3melgc.png)
The molecular formula will be=
![2* CF=C_2F_2](https://img.qammunity.org/2021/formulas/chemistry/college/ljwrk0onc8foarvorlph88r9pdau8vtljp.png)