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Answer:
[tex]\Delta _rH=-39,1kJ[/tex]
Explanation:
Hello!
In this case, since it is possible to assume that the heat released by the reaction is absorbed by the water in the calorimeter we can write:
[tex]Q_{rxn}=-200mL*\frac{1g}{1mL}*4.184\frac{J}{g\°C}*(23.20\°C-21.80\°C)\\\\Q_{rxn}=-1,171.5J[/tex]
Now, since the reaction between silver nitrate and hydrochloric acid is:
[tex]HCl+AgNO_3\rightarrow AgCl+HNO_3[/tex]
We can see there is a reacting 1:1 mole ratio, thus, the reacting moles are computed via the molarity of the solutions:
[tex]n=0.300mol/L*0.100L=0.0300mol[/tex]
Finally, the enthalpy of reaction is:
[tex]\Delta _rH=\frac{-1,171.5J}{0.0300mol}=-39,050.7J[/tex]
And in kJ:
[tex]\Delta _rH=-39,1kJ[/tex]
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