Answer:
The correct answer is -1659.17 J/K.
Step-by-step explanation:
The reaction given is:
2H₂O (l) ⇔ 2H₂ (g) + O₂ (g)
In the given case, first there is a need to find ΔHreaction, which is equivalent to ΔHf (products) - ΔHf(reactants)
Based on the standard thermodynamic table, the ΔHf(H₂O) is -285.8 KJ/mol, the ΔHf(H₂) is 0 KJ/mol, and the ΔHf(O₂) is 0 KJ/mol.
On putting the values, the ΔHreaction will be,
ΔHreaction = 2 × ΔHf(H₂) + ΔHf(O₂) - 2 × ΔHf(H₂O)
= 2 × 0 + 0 - 2 × (-285.8 KJ/mol) = 571.6 KJ
The calculated value of ΔHreaction is for the two moles of H₂O, now for 1.73 moles of H₂O it will be,
ΔHreaction = +571.6 KJ / 2 mol × 1.73 mol = 494.434 KJ
The temperature given in the question is 298 K, now ΔSsurrounding will be,
ΔSsurrounding = -ΔHreaction/T = -494434 J/298 K = -1659.17 J/K.