When 40.0 mL of 0.200 M HCl at 21.5°C is added to 40.0 mL of 0.200 M NaOH also at 21.5°C in a coffee-cup calorimeter, the temperature of the resulting solution rises to 22.8°C. Assume that the volumes are additive, the specific heat of the solution is 4.18 Jg -1°C -1 and that the density of the solution is 1.00 g mL -1 Calculate the enthalpy change, ΔH in kJ for the reaction:

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Annainn Annainn · Answer 1 · 2019-08-04T15:02:17+02:00

Answer:

The enthalpy change for the reaction is ΔH = - 54.3 kJ/mol

Explanation:

The reaction between HCl and NaOH is a neutralization reaction:

[tex]HCl + NaOH \rightarrow NaCl + H2O[/tex]

Heat released during neutralization = Heat gained by water

i.e. [tex]\qrxn = -\q(solution)-----(1)[/tex]

where:

[tex]\q(solution) = mc\Delta T-----(2)[/tex]

m = total mass of solution

[tex]m = density*total\ volume = 1.00g/ml*(40.00+40.00)ml = 80.00\ g[/tex]

ΔT = change in temperature = 22.8 - 21.5 = 1.3 C

c = specific heat = 4.18 J/g C

[tex]\q(solution) = 80.00g*4.18J/gC*1.3C = 434.7 J[/tex]

As per equation (1): qrxn = -434.7 J

The reaction enthalpy ΔH is the heat released per mole of acid (or base)

[tex]Moles\ of\ HCl = V(HCl) * M(HCl) = 0.040 L*0.200moles/L = 0.008\ moles[/tex]

[tex]\Delta Hrxn = \frac{q}{mole}=\frac{-434.7J}{0.008mole}=-54337 J/mol=-54.3 kJ/mol[/tex]