Question #61897

1 Answer
Stefan V.
Mar 3, 2017

Use the compound's molar mass.

Explanation:

The idea here is that the molecular formula is always a multiple of the empirical formula

color(blue)(ul(color(black)("molecular formula" = "empirical formula" xx n)))

Here n must be a whole number.

In other words, the mass of 1 mole of molecular formulas of nicotine must be equal to the mass of 1 mole of empirical formulas of nicotine multiplied by a constant n.

You know that the empirical formula for nicotine is

"C"_5"H"_7"N"

use the molar masses of the elements that make up the empirical formula to find the molar mass of the empirical formula

5 xx "12.01 g mol"^(-1) " "+
7 xx "1.008 g mol"^(-1)
1 xx "14.07 g mol"^(-1)
color(white)(aaaaaaaaaaaaaaa)/color(white)(a)
" 81.18 g mol"^(-1)

Now look up the molar mass of nicotine, which you'll find listed as

M_"M nicotine" = "162.23 g mol"^(-1)

You can thus say that

162.23 color(red)(cancel(color(black)("g mol"^(-1)))) = 81.18 color(red)(cancel(color(black)("g mol"^(-1)))) xx color(blue)(n)

This will get you

color(blue)(n) = 162.23/81.18 = 1.998 ~~ 2

Therefore, you can say that the molecular formula for nicotine is

color(darkgreen)(ul(color(black)(("C"_5"H"_7"N")_color(blue)(2) = "C"_10"H"_14"N"_2)))

![http://www.gettyimages.com/detail/video/molecule-of-nicotine-stock-footage/185692640](https://d2jmvrsizmvf4x.cloudfront.net/Hj3kE6SrQ3CqUTkas7Or_molecule-of-nicotine-video-id185692640)

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