Question

A hydrocarbon gas with an empirical formula `CH_2` has a density of 1.88 grams per liter at 0°C and 1.00 atmosphere. What is a possible formula for the hydrocarbon?

Answer 1

We need to find a molecular mass, and the best way of doing this is the Ideal Gas Equation: `PV=nRT`.

Explanation:

We solve for `n` and `n="Mass"/"Molar mass"` `=` `(PV)/(RT)`

And, `"Molar mass"` `=` `(RTxx"mass")/(PV)`

`=` `(RT)/Pxx"mass"/V`

`=` `(rhoRT)/P` because `"mass"/V=rho="density"`

And thus,

`"Molar mass"` `=` `(rhoRT)/P`

`(1.88*g*cancel(L^-1)xx0.0821*cancel(L)*cancel(atm)*cancel(K^-1)*mol^-1xx273.15*cancel(K))/(1.00*cancel(atm))`

Well, this gives me an answer in `g*mol^-1`, so I might be doing something right.

I get (finally!), `"Molar mass"` `=` `42.2*g*mol^-1`

Now the molecular formula is always a mulitiple of the empirical formula, of course, the multiple might be `1`.

`("Empirical formula")xxn="Molecular formula"`

And `nxx(2xx1.00794 +12.01)*g*mol^-1=42.2*g*mol^-1`.

Clearly, `n=3`, and molecular formula `=` `C_3H_6`. We have `"propylene"` or `"cyclopropene"`.

This is a first year problem, I take it. I ask because it gives me an idea as to how to bowl.