Consider the following reaction at 25 °C: Ba(OH), 8 H:O(s) + 2 NH.Cl(s) — BaCl(s) + 2 NH (g) + 10 H:O(l) If AG = -14.1 kJ/mol, determine the value of AG assuming that a mixture contains 12.0 g of Ba(OH): 8H:O, 4.00 g of NH.CI(s), 7.79 g of BaCl, 1.83 atm of NH, and 6.73 g of H.O.

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Consider the following reaction at 25 °C:
Ba(OH)-8 H.O(s) + 2 NH.Cl(s) —+ BaCl(s) + 2 NH:(g) + 10 H:O(l)
If AG = -14.1 kJ/mol, determine the value of AG assuming that a
mixture contains 12.0 g of Ba(OH): 8H:O, 4.00 g of NH.Cl(s), 7.79 g
of BaCl, 1.83 atm of NH, and 6.73 g of H₂O.
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Transcribed Image Text:- с Fn 65°F Cloudy https://app.101edu.co 7 1 7 Q A Consider the following reaction at 25 °C: Ba(OH)-8 H.O(s) + 2 NH.Cl(s) —+ BaCl(s) + 2 NH:(g) + 10 H:O(l) If AG = -14.1 kJ/mol, determine the value of AG assuming that a mixture contains 12.0 g of Ba(OH): 8H:O, 4.00 g of NH.Cl(s), 7.79 g of BaCl, 1.83 atm of NH, and 6.73 g of H₂O. Z Ⓡ 2 W S Alt 2 3 d E D FR C do.. $ 1 R F V O All % 5 5 T Question 14.e of 15 G 6 B Y H & 7 U N 8 1 JK M ( 9 O O L P ► 1 4 7 +/- Alt 2 3 -26.93 kJ 5 6 8 ? 9 0 14 + 694E B 10 Subm X C x 100 5:59 PM
Expert Solution
Step 1

The given reaction at 25 oC is:

Ba(OH)2.8H2O(s) + 2NH4Cl(s)  BaCl2(s) + 2NH3(g) + 10H2O(l) ; Go = - 14.1 kJ/mol 

Temperature, T = 25 + 273.15 = 298.15 K 

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