Consider the following reaction and its equilibrium constant: 12(8) + Br2(g) = 2 IBr(g) Kc = 1.1 × 102 A reaction mixture contains 0.37 M 12, 0.30 M Br2 and 3.5 M IBr. Which of the following statements is TRUE concerning this system? The reaction quotient will decrease. The equilibrium constant will increase. The reaction will shift in the direction of products. The system is at equilibrium. The reaction will shift in the direction of reactants.

Chemistry: The Molecular Science
5th Edition
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:John W. Moore, Conrad L. Stanitski
Chapter12: Chemical Equilibrium
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Problem 62QRT
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Consider the following reaction and its equilibrium constant:
12(8) + Br2(g) = 2 IBr(g)
Kc = 1.1 × 102
A reaction mixture contains 0.37 M 12, 0.30 M Br2 and 3.5 M IBr. Which of the following statements
is TRUE concerning this system?
The reaction quotient will decrease.
The equilibrium constant will increase,
The reaction will shift in the direction of products.
O The system is at equilibrium.
The reaction will shift in the direction of reactants.
Transcribed Image Text:Consider the following reaction and its equilibrium constant: 12(8) + Br2(g) = 2 IBr(g) Kc = 1.1 × 102 A reaction mixture contains 0.37 M 12, 0.30 M Br2 and 3.5 M IBr. Which of the following statements is TRUE concerning this system? The reaction quotient will decrease. The equilibrium constant will increase, The reaction will shift in the direction of products. O The system is at equilibrium. The reaction will shift in the direction of reactants.
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