Question #0314e

1 Answer
Stefan V.
Nov 25, 2016

"13.35 g"

Explanation:

You could start by converting the heat of combustion, also known as the enthalpy of combustion, DeltaH_"comb", from kilojoules per mole to kilojoules per gram, since that would be more useful in determining the number of grams needed to produce "296.20 kJ".

So, you know that the enthalpy of combustion for a given compound is equal to

DeltaH_"comb" = - "1170.0 kJ mol"^(-1)

The minus sign is used here to denote heat given off by the reaction, so you could say that

when "1 mole" of this compound undergoes combustion, exactly "1170.0 kJ" of heat are being given off

Since you know that the compound has a molar mass of "52.73 g mol"^(-1), you can say that the enthalpy of combustion is equivalent to

-1170.0 "kJ"/color(red)(cancel(color(black)("mol"))) * (1color(red)(cancel(color(black)("mol"))))/"52.73 g" = -"22.1885 kJ g"^(-1)

This means that

when "1 gram" of this compound undergoes combustion, exactly "22.1885 kJ" of heat are being given off

Now all you have to do is use the enthalpy of combustion as a conversion factor to go from heat given off to grams

296.20color(red)(cancel(color(black)("kJ"))) * "1 g"/(22.1885color(red)(cancel(color(black)("kJ")))) = color(darkgreen)(ul(color(black)("13.35 g")))

The answer is rounded to four sig figs, the number of sig figs you have for the molar mass of the compound.

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