contestada

2 H2O(l) → 2 H2 (g) + O2 (g) ΔH°rxn = +572 kJ Determine the heat associated with the reaction (qrxn, in kJ) when 4.85 grams of H2(g) is produced.

Respuesta :

The heat associated with the reaction (qrxn, in KJ) when 4.85 grams of H₂ is produced is +693.55 KJ

Balanced equation

2H₂O → 2H₂ + O₂  ΔH°rxn = +572 KJ

Molar mass of H₂ = 2 × 1 = 2 g/mol

Mass of H₂ from the balanced equation = 2 × 2 = 4 g

SUMMARY

From the balanced equation above,

When 4 g of H₂ is produced, 572 KJ of heat where needed.

How to determine the heat required

From the balanced equation above,

When 4 g of H₂ is produced, 572 KJ of heat where needed.

Therefore,

When 4.85 g of H₂ is produced = (4.85 × 572) / 4 = +693.55 KJ of heat will be required.

Thus, +693.55 KJ of heat is required for the reaction.

Learn more about stoichiometry:

https://brainly.com/question/14735801