What is the enthalpy of reaction in #"kJ/mol"# for when #"0.254 g"# of #"Mg"# is dropped into a coffee-cup calorimeter, if the temperature of #"200. mL"# of water rose from #25.00^@ "C"# to #32.20^@ "C"#?
1 Answer
I got
Well, the first thing you should recognize is that
Furthermore, by conservation of energy, we assume that
(It's not perfect, as the calorimeter is open to the atmosphere to manage a constant pressure, but it's a pretty decent assumption.)
From that, we have the main equation:
#bb(q_"cal" = m_wc_wDeltaT)# where:
#m_w# is the mass of the solution, obtained by using the volume of the product solution and the density of the solution (which we assume is that of pure water).#c_w = "4.184 J/g"^@ "C"# is the specific heat capacity of the solution, again assumed to be equal to that for pure water.#DeltaT# is the change in temperature of the solution due to the exothermic reaction.
So, the main steps would be:
- Find
#q_"cal"# , in#"kJ"# . - Solve for
#q_"rxn"# via the sign difference, in#"kJ"# . - Solve for
#DeltaH_"rxn"# in#"kJ""/"ul(ul("mol"))# by utilizing the given mass of#"Mg"(s)# .
FINDING HEAT EVOLVED IN THE CALORIMETER
#color(green)(q_"cal") = ("200. mL" xx "1.00 g"/"mL")("4.184 J/g"^@ "C")(32.20^@ "C" - 25.00^@ "C")#
#=# #6.02_(496)xx10^3# #"J"#
#= color(green)(6.02_(496))# #color(green)("kJ")#
where subscripts indicate the uncertain digits (the digits past the last significant figure).
FINDING HEAT EVOLVED DUE TO THE REACTION
This is easy. We stated that
#color(green)(q_"rxn" = -6.02_(496))# #color(green)("kJ")#
FINDING ENTHALPY OF THE REACTION
This part is where you really have to think. The reaction is based on the given mass of
The
#color(green)(n_("Mg"(s))) = "0.254 g Mg"(s) xx ("1 mol Mg"(s))/("24.305 g Mg"(s))#
#= color(green)(0.0104_(505))# #color(green)("mols Mg"(s))#
Finally, we note the unit conversion to get:
#color(blue)(DeltaH_"rxn") = q_"rxn"/(n_("Mg"(s)))#
#= -(6.02_(496) "kJ")/(0.0104_(505) "mols Mg"(s))#
#= color(blue)(-"577 kJ/mol")# (rounded to three sig figs)
