Respuesta :
Answer: The amount of heat released when 0.211 moles of [tex]B_5H_9(l)[/tex] reacts is 554.8 kJ
Explanation:
The chemical equation for the reaction of [tex]B_5H_9[/tex] with oxygen gas follows:
[tex]2B_5H_9(l)+12O_2(g)\rightarrow 5B_2O_3(s)+9H_2O(l)[/tex]
The equation for the enthalpy change of the above reaction is:
[tex]\Delta H_{rxn}=[(5\times \Delta H_f_{(B_2O_3(s))})+(9\times \Delta H_f_{(H_2O(l))})]-[(2\times \Delta H_f_{(B_5H_9(l))})+(12\times \Delta H_f_{(O_2(g))})][/tex]
We are given:
[tex]\Delta H_f_{(H_2O(l))}=-285.4kJ/mol\\\Delta H_f_{(B_2O_3(s))}=-1272kJ/mol\\\Delta H_f_{(B_5H_9(l))}=73.2kJ/mol\\\Delta H_f_{(O_2(g))}=0kJ/mol[/tex]
Putting values in above equation, we get:
[tex]\Delta H_{rxn}=[(2\times (-1272))+(9\times (-285.4))]-[(2\times (73.2))+(12\times (0))]\\\\\Delta H_{rxn}=-5259kJ[/tex]
To calculate the amount of heat released for the given amount of [tex]B_5H_9(l)[/tex], we use unitary method, we get:
When 2 moles of [tex]B_5H_9(l)[/tex] reacts, the amount of heat released is 5259 kJ
So, when 0.211 moles of [tex]B_5H_9(l)[/tex] will react, the amount of heat released will be = [tex]\frac{5259}{2}\times 0.211=554.8kJ[/tex]
Hence, the amount of heat released when 0.211 moles of [tex]B_5H_9(l)[/tex] reacts is 554.8 kJ
