Gaseous hydrogen iodide is placed in a closed container at 425°C, where it partially decomposes to hydrogen and iodine: 2HI(g) = H2(g) + 12(g) At equilibrium it is found that [HI] = 3.53 x 10³ M, [H₂] = 4.79 x 104 M, and [1₂] = 4.79 x10¹4 M. What is the value of K, at this temperature? A mixture of 0.10 mol of NO, 0.050 mol of H₂ and 0.10 mol of H₂O is placed in a 1.0-L vessel at 300K. The following equilibrium is established: 2NO(g) + 2 H2(g) N2(g) + 2H₂O(g) At equilibrium [NO] = 0.062M. A. Calculate the equilibrium concentrations of H₂, N₂ and H₂O. B. Calculate K..

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Gaseous hydrogen iodide is placed in a closed container at 425°C, where it partially
decomposes to hydrogen and iodine:
2HI(g) = H2(g) + 12(g)
At equilibrium it is found that [HI] = 3.53 x 10³ M, [H₂] = 4.79 x 104 M, and [1₂] = 4.79 x10¹4 M.
What is the value of K, at this temperature?
A mixture of 0.10 mol of NO, 0.050 mol of H₂ and 0.10 mol of H₂O is placed in a 1.0-L vessel at
300K. The following equilibrium is established:
2NO(g) + 2 H₂(g) = N2(g) + 2H₂O(g)
At equilibrium [NO] = 0.062M.
A. Calculate the equilibrium concentrations of H₂, N₂ and H₂O.
B. Calculate K..
Transcribed Image Text:Gaseous hydrogen iodide is placed in a closed container at 425°C, where it partially decomposes to hydrogen and iodine: 2HI(g) = H2(g) + 12(g) At equilibrium it is found that [HI] = 3.53 x 10³ M, [H₂] = 4.79 x 104 M, and [1₂] = 4.79 x10¹4 M. What is the value of K, at this temperature? A mixture of 0.10 mol of NO, 0.050 mol of H₂ and 0.10 mol of H₂O is placed in a 1.0-L vessel at 300K. The following equilibrium is established: 2NO(g) + 2 H₂(g) = N2(g) + 2H₂O(g) At equilibrium [NO] = 0.062M. A. Calculate the equilibrium concentrations of H₂, N₂ and H₂O. B. Calculate K..
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