Combustion analysis of toluene, a common organic solvent, produces 2.93 mg of #CO_2# and .685 g of #H_2O#. The molecular mass is 46 g/mol. If the compound contains only carbon and hydrogen, what is the molecular formula?
1 Answer
I'm quite sure there's a typo here. There's no way that you made only
First I would see how many moles of each compound were made so we can construct the right side of the complete combustion reaction. Let Toluene be labeled as
#kC_iH_j(l) + l"O"_2(g) -> m"CO"_2(g) + n"H"_2"O"(g)#
where we need to determine
#2.93 cancel("g CO"_2) xx ("1 mol CO"_2)/(44.01 cancel("g CO"_2)) = "0.06658 mol CO"_2#
#0.685 cancel("g H"_2"O") xx ("1 mol H"_2"O")/(18.015 cancel("g CO"_2)) = "0.03802 mol H"_2"O"#
Then, let's normalize this so that the
#0.06658/0.06658 = "1 mol CO"_2#
#0.03802/0.06658 = "0.5710 mol H"_2"O"#
We still need to get both of these to whole numbers, so what I would do is keep adding
#k"C"_i"H"_j (l) + l"O"_2(g) -> 7"CO"_2(g) + 4"H"_2"O"(g)#
At this point we can start balancing the equation:
#"C"_i"H"_j (l) + 9"O"_2(g) -> 7"CO"_2(g) + 4"H"_2"O"(g)#
Then, we have
But we have a problem. Your molecular mass is not correct! Toluene is much more than
Looking it up, I see it is actually
Therefore the final balanced equation is:
#color(blue)("C"_7"H"_8 (l) + 9"O"_2(g) -> 7"CO"_2(g) + 4"H"_2"O"(g))#
