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how much heat is absorbed when \\(45.00\\text{ g}\\) of \\(\\text{c}(s)…

Question

how much heat is absorbed when \\(45.00\text{ g}\\) of \\(\text{c}(s)\\) reacts in the presence of excess \\(\text{so}_2(g)\\) to produce \\(\text{cs}_2(l)\\) and \\(\text{co}(g)\\) according to the following chemical equation?

\\5\text{ c}(s) + 2\text{ so}_2(g) \
ightarrow \text{cs}_2(l) + 4\text{ co}(g) \quad \delta h^\circ = 239.9\text{ kj}\\

  • \\(179.8\text{ kj}\\)
  • \\(239.9\text{ kj}\\)
  • \\(898.5\text{ kj}\\)
  • \\(2158\text{ kj}\\)

Explanation:

Convert mass of carbon to moles

Using the Stoichiometry knowledge point

$$ LATEXBLOCK0 $$

Relate moles of carbon to reaction enthalpy

Using the Stoichiometry knowledge point

$$ LATEXBLOCK1 $$

Calculate the heat absorbed

Using the Stoichiometry knowledge point

$$ LATEXBLOCK2 $$

Answer:

  • (A) 179.8 kJ (Correct answer)
  • (B) 239.9 kJ
  • (C) 898.5 kJ
  • (D) 2158 kJ