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6: Molecular Level Models of Kinetics

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    516490
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    • 6.1: Kinetics of Reactions in Solution
      This section concentrates on molecular level models for how reactions occur in solutions.
    • 6.2: Kinetic vs. Thermodynamic Control of Reactions
      This section discusses the concepts of kinetic and thermodynamic control in chemical reactions. Kinetic control favors the formation of products that form faster, while thermodynamic control leads to more stable products. The conditions under which reactions occur, such as temperature and concentration, influence which pathway is favored. Adjusting conditions to favor the thermodynamic or kinetic product is commonly used to optimize synthetic routes in organic chemistry.
    • 6.3: Collision Theory
      Collision Theory, introduced by Max Trautz and William Lewis in the 1910s, explains the rate of chemical reactions based on molecular collisions, their energy, and the orientation of reacting molecules. The theory predicts the reaction rate using factors like collision frequency and activation energy.
    • 6.4: Transition State Theory
      Transition state theory, proposed by Henry Erying in 1935, explains chemical reaction rates by considering an intermediate state called the transition state. When molecules collide, they form an activated complex, partially breaking and forming bonds. The theory expresses reaction rates as a product of transition state concentration and decomposition frequency. It relates these rates to equilibrium constants, free energy, and vibrational frequency of bonds.
    • 6.5: Reactions Involving Ions
      Charged and polar particles experience electrostatic forces as they approach each other. Thus, we would expect the charges on particles and the electrostatic properties (dielectric constant and polarity) of the solvent to impact reaction rates. In this section we describe the observed impacts, their causes and a quantitative model for the impact of ionic strength on observed rate constants.


    This page titled 6: Molecular Level Models of Kinetics is shared under a CC BY-NC-SA 4.0 license and was authored, remixed, and/or curated by Jonathan Gutow.

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