Respuesta :
Answer:
The Standard enthalpy of reaction: [tex]\Delta H_{r}^{\circ } = (-172.2) \, kJ[/tex]
Explanation:
Given- Standard Heat of Formation:
[tex]\Delta H_{f}^{\circ } [H_{3}AsO_{4}(aq)][/tex] = -904.6 kJ/mol
[tex]\Delta H_{f}^{\circ } [H_{2}(g)][/tex] = 0 kJ/mol,
[tex]\Delta H_{f}^{\circ } [AsH_{3}(g)][/tex] = +66.4 kJ/mol
[tex]\Delta H_{f}^{\circ } [H_{2}O(l)][/tex] = -285.8 kJ/mol
Given chemical reaction: H₃AsO₄(aq) + 4H₂(g) → AsH₃(g) + 4H₂O(l)
The standard enthalpy of reaction: [tex]\Delta H_{r}^{\circ }[/tex] = ?
To calculate the Standard enthalpy of reaction ([tex]\Delta H_{r}^{\circ }[/tex]), we use the equation:
[tex]\Delta H_{r}^{\circ } = \sum \nu .\Delta H_{f}^{\circ }(products)-\sum \nu .\Delta H_{f}^{\circ }(reactants)[/tex]
[tex]\Delta H_{r}^{\circ } = [1 \times \Delta H_{f}^{\circ } [AsH_{3} (g)] + 4 \times \Delta H_{f}^{\circ } [H_{2}O(l)]] - [1 \times \Delta H_{f}^{\circ } [H_{3}AsO_{4}(aq)] + 4 \times \Delta H_{f}^{\circ } [H_{2}(g)][/tex]
[tex]\Rightarrow \Delta H_{r}^{\circ } = [1 \times (+66.4\,kJ/mol) + 4 \times (-285.8\,kJ/mol) ] - [1 \times (-904.6\,kJ/mol) + 4 \times (0\,kJ/mol)][/tex]
[tex]\Rightarrow \Delta H_{r}^{\circ } = [-1076.8\, kJ] - [-904.6\,kJ][/tex]
[tex]\Rightarrow \Delta H_{r}^{\circ } = (-172.2 \, kJ)[/tex]
Therefore, the Standard enthalpy of reaction: [tex]\Delta H_{r}^{\circ } = (-172.2) \, kJ[/tex]
