Using a second-order integrated rate law to find concentration change At a certain temperature this reaction follows second-order kinetics with a rate constant of 0.0491M¹S¹ 2H1 (g) → H₂(g) + 1₂ (g) Suppose a vessel contains HI at a concentration of 1.03 M. Calculate the concentration of HI in the vessel 70.0 seconds later. You may assume no other reaction is important. Round your answer to 2 significant digits. OM 0.1.2 X

Chemistry for Engineering Students
4th Edition
ISBN:9781337398909
Author:Lawrence S. Brown, Tom Holme
Publisher:Lawrence S. Brown, Tom Holme
Chapter11: Chemical Kinetics
Section: Chapter Questions
Problem 11.96PAE: The following statements relate to the reaction for the formation of HI: H2(g) + I2(g) -* 2 HI(g)...
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Using a second-order integrated rate law to find concentration change
At a certain temperature this reaction follows second-order kinetics with a rate constant of 0.0491M¹S¹
2H1 (g) → H₂(g) + 1₂ (g)
Suppose a vessel contains HI at a concentration of 1.03 M. Calculate the concentration of HI in the vessel 70.0 seconds later. You may assume no other reaction
is important.
Round your answer to 2 significant digits.
OM
0.1.2
X
Transcribed Image Text:Using a second-order integrated rate law to find concentration change At a certain temperature this reaction follows second-order kinetics with a rate constant of 0.0491M¹S¹ 2H1 (g) → H₂(g) + 1₂ (g) Suppose a vessel contains HI at a concentration of 1.03 M. Calculate the concentration of HI in the vessel 70.0 seconds later. You may assume no other reaction is important. Round your answer to 2 significant digits. OM 0.1.2 X
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