Lecture 1404 Temperature and Rate

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Presentation transcript:

Lecture 1404 Temperature and Rate Chemistry, The Central Science, 11th edition Theodore L. Brown; H. Eugene LeMay, Jr.; and Bruce E. Bursten Lecture 1404 Temperature and Rate John D. Bookstaver St. Charles Community College Cottleville, MO © 2009, Prentice-Hall, Inc.

Effect of Temperature on Rate Concept of Activation Energy Temperature and Rate Effect of Temperature on Rate Concept of Activation Energy © 2009, Prentice-Hall, Inc.

Temperature and Rate Generally, as temperature increases, so does the reaction rate. This is because k is temperature dependent. © 2009, Prentice-Hall, Inc.

Temperature and Rate © 2009, Prentice-Hall, Inc.

The Collision Model In a chemical reaction, bonds are broken and new bonds are formed. Molecules can only react if they collide with each other. © 2009, Prentice-Hall, Inc.

The Collision Model Furthermore, molecules must collide with the correct orientation and with enough energy to cause bond breakage and formation. © 2009, Prentice-Hall, Inc.

rate is proportional to frequency of collisions favorable to reaction Collision Theory rate is proportional to frequency of collisions favorable to reaction Collision Theory Orientation Both

Activation Energy In other words, there is a minimum amount of energy required for reaction: the activation energy, Ea. Just as a ball cannot get over a hill if it does not roll up the hill with enough energy, a reaction cannot occur unless the molecules possess sufficient energy to get over the activation energy barrier. © 2009, Prentice-Hall, Inc.

Reaction Coordinate Diagrams It is helpful to visualize energy changes throughout a process on a reaction coordinate diagram which graphs energy vs. reaction progress © 2009, Prentice-Hall, Inc.

Rearrangement of Methyl Isocyanate © 2009, Prentice-Hall, Inc.

Reaction Coordinate Diagrams The diagram shows the energy of the reactants and products (and, therefore, E). © 2009, Prentice-Hall, Inc.

Reaction Coordinate Diagrams The high point on the diagram is the transition state. © 2009, Prentice-Hall, Inc.

Reaction Coordinate Diagrams The species present at the transition state is called the activated complex. © 2009, Prentice-Hall, Inc.

Reaction Coordinate Diagrams The energy gap between the reactants and the activated complex is the activation energy barrier. © 2009, Prentice-Hall, Inc.

Maxwell–Boltzmann Distributions Temperature is defined as a measure of the average kinetic energy of the molecules in a sample. At any temperature there is a wide distribution of kinetic energies. © 2009, Prentice-Hall, Inc.

Maxwell–Boltzmann Distributions As the temperature increases, the curve flattens and broadens. Thus at higher temperatures, a larger population of molecules has higher energy. © 2009, Prentice-Hall, Inc.

Maxwell–Boltzmann Distributions If the dotted line represents the activation energy, then as the temperature increases, so does the fraction of molecules that can overcome the activation energy barrier. As a result, the reaction rate increases. © 2009, Prentice-Hall, Inc.

Maxwell–Boltzmann Distributions This fraction of molecules can be found through the expression where R is the gas constant and T is the Kelvin temperature. -Ea RT f = e © 2009, Prentice-Hall, Inc.

Temperature and Rate © 2009, Prentice-Hall, Inc.

If one examines the relationship between the rate constant, k, and temperature, we find that ln k  1/T

m = -Ea/R ln k 1/T

Arrhenius Equation

Arrhenius Equation where A is the frequency factor, a number that represents the likelihood that collisions would occur with the proper orientation for reaction. R = 8.314 J/mol.K & T is in Kelvin © 2009, Prentice-Hall, Inc.

Arrhenius Equation Therefore, if k is determined experimentally at several temperatures, Ea can be calculated from the slope of a plot of ln k vs. 1/T. © 2009, Prentice-Hall, Inc.

Selecting 2-points on the line, (1/T1, ln k1) and (1/T2, ln k2)