Question #7aa26
1 Answer
The answer is indeed (c).
Explanation:
The most important thing to remember about the standard enthalpy of formation is that it represents the enthalpy change of reaction when one mole of a compound is formed from its constituent elements in their stable form under standard conditions.
In order for the enthalpy change of reaction,
Take a look at the options given to you. The first balanced chemical equation is
#"N"_text(2(g]) + 3"H"_text(2(g]) -> color(red)(2)"NH"_text(3(g])#
Notice that this reaction results in the formation of
This reaction will have an enthalpy change of reaction,
This means that you can use this as a conversion factor to find the enthalpy change of reaction when
#1 color(red)(cancel(color(black)("mole NH"_3))) * (DeltaH_"rxn a"^@)/(color(red)(2)color(red)(cancel(color(black)("moles NH"_3)))) = (DeltaH_a^@)/color(red)(2)#
This means that you have
#DeltaH_f^@ = (DeltaH_"rxn a"^@)/color(red)(2)#
This should confirm the fact that you must look for a reaction that results in the formation of
Reaction (b) results in the formation of one mole of ammonia, but the chemical equation given is not balanced, which means that it is not valid.
Moreover, you can't have atomic nitrogen,
#color(red)(cancel(color(black)("N"_text((g]) + 3"H"_text(2(g]) -> "NH"_text(3(g])))) -># NOT valid
Option (d) is out of the question, since it describes the decomposition of ammonia, not its formation.
This leaves you with option (c). Once again, this reaction results in the formation of
#1/2"N"_text(2(g]) + 3/2"H"_text(2(g]) -> "NH"_text(3(g])#
This time, you have
#DeltaH_"rxn c"^@ = DeltaH_f^@#
Here's how you can interpret this equation - when one atom of nitrogen, which is denoted by half of a nitrogen molecule,
This reaction has a standard enthalpy change of reaction equal to the standard enthalpy change of formation,
