Iodine monobromide, IBr, occurs as brownish-black crystals that vaporize with decomposition: 2IB1(g) = I2 (9)+ Br2 (g) The equilibrium constant Ke at 100°C is 0.026. If 1.10 × 10-2 mol IBr is placed in a 0.600-L vessel at 100°C, what are the molar concentrations of substances at equilibrium in the vapor? [IBr] M %3D M [Br2] = M
Iodine monobromide, IBr, occurs as brownish-black crystals that vaporize with decomposition: 2IB1(g) = I2 (9)+ Br2 (g) The equilibrium constant Ke at 100°C is 0.026. If 1.10 × 10-2 mol IBr is placed in a 0.600-L vessel at 100°C, what are the molar concentrations of substances at equilibrium in the vapor? [IBr] M %3D M [Br2] = M
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Chapter1: Chemical Foundations
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![Iodine monobromide, IBr, occurs as brownish-black crystals that vaporize with decomposition:
2IB1(g) = I2 (9)+Br2 (g)
The equilibrium constant K. at 100°C is 0.026. If 1.10 × 10¬2 mol IBr is placed in a 0.600-L vessel at 100°C, what are the molar
concentrations of substances at equilibrium in the vapor?
[IBr] =
M
[I2] =
M
[Br2] =
M](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fd8ed91b5-a97b-499f-87e0-73309cfc6121%2F058e0baa-3df1-4f76-869b-6b447e571a13%2Fan9617h_processed.png&w=3840&q=75)
Transcribed Image Text:Iodine monobromide, IBr, occurs as brownish-black crystals that vaporize with decomposition:
2IB1(g) = I2 (9)+Br2 (g)
The equilibrium constant K. at 100°C is 0.026. If 1.10 × 10¬2 mol IBr is placed in a 0.600-L vessel at 100°C, what are the molar
concentrations of substances at equilibrium in the vapor?
[IBr] =
M
[I2] =
M
[Br2] =
M
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