Consider the reaction B2H6(g) + 3 O2(g) → B2O3(s) + 3 H2O(g) ∆H = -2035 kJ How much heat is released when a mixture of 6.73 g B2H6 and 1.20 g O2 is burned? heat released = kJ

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Chapter6: Thermochemistry
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Problem 17Q: The enthalpy change for the reaction CH4(g)+2O2(g)CO2(g)+2H2O(l) is 891 kJ for the reaction as...
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Consider the reaction

B2H6(g) + 3 O2(g) → B2O3(s) + 3 H2O(g) ∆H = -2035 kJ

How much heat is released when a mixture of 6.73 g B2H6 and 1.20 g O2 is burned?

heat released = kJ

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