Correlation of Activation Energy with Charge Transfer Activation energies for the addition of peroxyl radicals to The measured activation energy for the.

Slides:



Advertisements
Similar presentations
Thermo-Chemistry Curve Balls
Advertisements

Page 34 In a chemical reaction, bonds in the reactants are broken and the atoms rearrange to form new bonds in the products. Flames or heat associated.

5. Answer the following questions using the information related to reactions X, Y, and Z in the table above. (a) For reaction X, write the expression for.
COMBUSTION of PROPANE 1.What does the reaction involve? (reactants and products) Reaction needs to be balanced.
MO Calculations of Imine Hydrolysis and Cu Complex Formation. CHM 6440/7440 Winter 2005 By Rabab Aoun.
Bond Enthalpies Section 5.4. Introduction More Good Stuff For H 2 the thermochemical equation describing the bond enthalpy is: H 2(g) → 2H (g) ∆H θ =
Department of Chemistry John R. Lindsay Smith, Moray S. Stark, Julian J. Wilkinson Department of Chemistry, University of York, York YO10 5DD, UK Peter.
The Nature of Organic Reactions: Alkenes and Alkynes
© 2013 Pearson Education, Inc. Fundamentals of General, Organic, and Biological Chemistry, 7e John McMurry, David S. Ballantine, Carl A. Hoeger, Virginia.
Chapter 4 The Study of Chemical Reactions Organic Chemistry, 6 th Edition L. G. Wade, Jr.
Moray S. Stark,* Max Smethurst and Alexandra Neal Department of Chemistry, University of York, York YO10 5DD, UK STLE 2006: Calgary 7 th - 11 th May 2006.
STANDARD MOLAR ENTHALPY OF FORMATION Enthalpy change when 1 mol of species is formed in its Standard State at a Specified Temperature from the most stable.
Exothermic and Endothermic Reactions. Exothermic reactions An exothermic reaction is a chemical change that releases energy. Where does the energy that.
Which of the following is the most stable radical?
The structure of benzene The electron config of carbon.
By: Dr. Siham Lahsasni 1 Unsaturated Hydrocarbons 1 Alkenes.
ChE 452 Lecture 15 Transition State Theory 1. Conventional Transition State Theory (CTST) 2 TST  Model motion over a barrier  Use stat mech to estimate.
Arenes Textbook p4-5.
CHE 311 Organic Chemistry I
220 Chapter 10: Conjugation in Alkadienes and Allylic Systems Conjugation: a series of overlapping p-orbitals 10.1: The Allyl Group - allylic position.
Unsaturated Hydrocarbons
Activation Energy vs. Charge Transfer Energy The activation energy for addition to This demonstrates the need to 1,3-butadiene is quite consistent with.
Kinetics and Thermodynamics of Simple Chemical Processes 2-1 Chemical thermodynamics: Is concerned with the extent that a reaction goes to completion.
Theoretical Study of Photodissociation dynamics of Hydroxylbenzoic Acid Yi-Lun Sun and Wei-Ping Hu* Department of Chemistry and Biochemistry, National.
Benzene animations This resembles the ideas of Kekule who saw benzene as cyclohexatriene.
Additional Aspects of Molecular Bonding & Structure Chapters 8 and 9 BLB 12 th.
18.1 The standard entahlpy change associated with breaking the bond in a diatomic molecule in the gas phase: N  N (g) > 2 N (g)  H [N  N] = +
Chapter 14 Conjugated Compounds and Ultraviolet Spectroscopy.
Conjugation in Alkadienes and Allylic Systems. A double bond can act like a substituent and give other groups special properties and reactivity. For example.
Alkenes AS Chemistry. Understand that alkenes and cycloalkenes are unsaturated hydrocarbons. Explain the overlap of adjacent p-orbitals to form a π-bond.
Praveenkumar Boopalachandran, 1 Jaan Laane 1 and Norman C. Craig 2 1 Department of Chemistry, Texas A&M University, College Station, Texas Department.
Via a low energy barrier, the dominant product will be determined by the activation barrier to form each product. 1 The benzene oxide/oxepin system plays.
2 Outline Background Objective Quantum Chemical Analysis Combinatorial Study and Data Mining Conclusion.
Department of Chemistry University of York, York, YO10 5DD, UK Epoxidation of 2,3-Dimethyl-2-Butene, Conjugated Dienes and 1,5-Hexadiene by Acetylperoxyl.
Title: Lesson 6 Activation Energy Learning Objectives: – Understand the term activation energy – Calculate activation energy from experimental data.
8–1 John A. Schreifels Chemistry 212 Chapter 15-1 Chapter 15 Chemical Equilibrium.
The story of benzene Write the electron configuration of Carbon. How many electrons are there in its outer shell? How many covalent bonds should carbon.
Bond Enthalpies 5.4.  Chemical reactions involve the breaking and making of bonds.  To understand the energy changes in a chemical reaction, we need.
5.5 Physical Properties of Alkenes
Is this your room? Then you already know about entropy.
Addition of Acetylperoxyl to 2,3-Dimethyl-2-Butene The first example of addition of oxygen centred radicals to alkenes to be investigated was for acetylperoxyl.
The structure of benzene. All the chemistry they knew suggested that any substance with a double or triple bond would be very reactive and react readily.
Energy Diagrams A Review. Energy Diagrams are a plot of the reaction steps, or “Reaction Coordinate” (X-axis) versus the Energy (Kcal or KJ)
Department of Chemistry University of York, York, YO10 5DD, UK Epoxidation of Cyclopentene, Cyclohexene and Cycloheptene by Acetylperoxyl Radicals References.
© 2014 Pearson Education, Inc. Chemistry: A Molecular Approach, 3rd Edition Nivaldo J. Tro Example 13.1Expressing Reaction Rates a.Use Equation 13.5 to.
1 The objectives of the 4 th Handout are to know about: PHCM 331 – Organic and Medicinal/Pharmaceutical Chemistry I Handout # 4 Winter 2015 / 2016 Some.
AN INTRODUCTION TO THE CHEMISTRY OF ALKENES. Before you start it would be helpful to… Recall the definition of a covalent bond Understand the difference.
Chapter 7 Lecture Alkenes I. Structure & Properties Organic Chemistry, 8 th Edition L. G. Wade, Jr.
ACS - PRF1 MICROWAVE STRUCTURE MEASUREMENTS  Microwave spectroscopy measurements have yielded the first accurate gas- phase structural parameters for.
 There is another way to calculate the heat of reaction, using bond enthalpies.  Bond enthalpy refers to the amount of energy stored in the chemical.
16-1 KINETICS: RATES AND MECHANISMS OF CHEMICAL REACTIONS.
1 Organic Chemistry, Third Edition Janice Gorzynski Smith University of Hawai’i Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction.
CHEMICAL THERMODYNAMICS CHEM171 – Lecture Series Three : 2012/01  Spontaneous processes  Enthalpy (H)  Entropy (S)  Gibbs Free Energy (G)  Relationship.
Chemical Bonding I: The Covalent Bond
Breaking and making bonds
1.3 AROMATIC HYDROCARBONS
Organic Chemistry Lesson 5 Alkenes.
Chapter 14 Aromatic Compounds
Energy Changes in Reactions (7.3)
Chapter 14 Aromatic Compounds
2.1 Unsaturated Hydrocarbons
Potential Energy Main Concept:
CHEM 3310 Chemical Kinetics Collision Theory & Transition State Theory.
Benzene and Aromatic Compounds
• Explain the overlap of adjacent p-orbitals to form a π-bond.
Benzene and Aromatic Compounds
STANDARD MOLAR ENTHALPY OF FORMATION
1.2.6 Bond Enthalpies.
Presentation transcript:

Correlation of Activation Energy with Charge Transfer Activation energies for the addition of peroxyl radicals to The measured activation energy for the non-cyclic, unsubstituted mono-alkenes all correlate well relatively unstrained cyclohexene fits in with estimates of the energy released by charge transfer well with this correlation between  E C and on formation of the transition state (  E C ). 2-5 activation energy. 1 Only cyclohexene could be included in this correlation, as electron affinities for cyclopentene and cycloheptene have not yet been determined. Department of Chemistry University of York, York, YO10 5DD, UK Epoxidation of Cyclopentene, Cyclohexene and Cycloheptene by Acetylperoxyl Radicals References Acknowledgements (1)Stark, M. S. J. Phys. Chem. 1997, 101, 8296; Stark, M. S., J. Am. Chem. Soc. 2000, 122, DMSS would like to thank the EPSRC for financial support. (2) Ruiz Diaz, R.; Selby, K.; Waddington, D. J. J. Chem. Soc. Perkin Trans , 360. (3) Baldwin, R. R.; Stout, D. R.; Walker, R. W. J. Chem. Soc. Faraday Trans , 80, (4) Ruiz Diaz, R.; Selby, K.; Waddington, D. J. J. Chem. Soc. Perkin Trans , 758. (5) Parr, R. G.; Pearson, R. G. J. Am. Chem. Soc. 1983, 105, (6) Dewar, M. J. S.; Zoebisch, E. G.; Healy, E. F.; Stewart, J. J. P. J. Am. Chem. Soc. 1985, 107, J. R. Lindsay Smith, D. M. S. Smith, M. S. Stark and D. J. Waddington Introduction To further the current understanding of how radicals add to C=C double bonds, eg. 1-3 a series of cyclic alkenes (cyclopentene, cyclohexene and cycloheptene) were reacted with acetylperoxyl radicals. The example given here is for CH 3 C(O)O 2  addition to cyclopentene, which ultimately forms the product cyclopentene oxide. Effect of Ring Strain on Activation Energy The degree of charge transfer at the transition state is determined by the degree of overlap between the free electron orbital of the radical, and the  orbital of the C=C double bond. Everything else being equal, the longer the C-O bond at the transition state, the less the overlap, hence there is less charge transfer and less energy released by this charge transfer. Consequently the barrier for radical addition to cyclopentene is higher than for addition to cyclohexene by 14  8 kJ mol -1. AM1 Geometries for the Addition of Acetylperoxyl Radicals to Cyclopentene Experimental and Results These reactions were studied via the co-oxidation of acetaldehyde (to produce acetylperoxyl radicals), the cyclic alkene and a previously studied reference alkene, cis-2-butene. Arrhenius parameters determined over the temperature range K are given in Table 1. Rate parameters for cis-2-butene are also given for comparison, 4 as it would be expected that a relatively unstrained cycloalkene would behave in a similar manner to this non-cyclic alkene. This is indeed found to be so, with no statistically significant difference between the parameters for cyclohexene and cis-2-butene. AdductTransition StateCyclopentene Oxide Effect of Ring Strain on A-factors Cyclopentene, which is planar and consequently highly strained, has a significantly larger pre-exponential factor and activation energy for its reaction with acetylperoxyl than either cyclohexene or cis-2-butene. Geometries for the transition states and isolated reactants calculated at the AM1 level 6 indicate that radical addition to cyclopentene can release a significant amount of entropy and consequently increase the pre-exponential factor for the reaction. The calculated ratio of the A-factors for cyclopentene with respect to cyclohexene is comparable with the experimental determination. An alternative interpretation is that the transition state for addition to cyclopentene is comparatively early with the C-O bond length being slightly longer than for cyclohexene. Consequently, the transition state is looser, consistent with a relatively large pre-exponential factor in comparison with addition to cyclohexene.