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THE CHEMISTRY OF ARENES Foundation Chemistry Semester 2 Mr A J Crooks
13.6 Aromatic Chemistry ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
13.6.1 Bonding ,[object Object],[object Object],[object Object],[object Object]
Aromatic Hydrocarbons ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
What are Arenes? Compounds that include  benzene  and compounds that  resemble  benzene in certain of their  chemical properties .  Common aromatic compounds other than benzene include   toluene, naphthalene, and anthracene   (all of which are present in coal tar).  So What is the structure of benzene and why does it make it special? Toluene Naphthalene Anthracene AKA: Aromatic Compounds
Discovery of Benzene ,[object Object],[object Object],[object Object],[object Object]
STRUCTURE OF BENZENE Primary analysis revealed benzene had... an   empirical formula of  CH   and a  molecular mass of 78  and a formula of C 6 H 6
[object Object],[object Object],[object Object]
STRUCTURE OF BENZENE Kekulé   suggested that benzene was... PLANAR CYCLIC   and HAD   ALTERNATING DOUBLE AND SINGLE BONDS
Kekule’s Dream (1) ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
 
[object Object]
Kekule’s Dream ,[object Object]
Kekule’s dream ,[object Object]
Flaws with this Structure ,[object Object],[object Object],[object Object],[object Object],[object Object]
Resonance Structures ,[object Object],[object Object],[object Object],[object Object]
Dewar Forms ,[object Object],[object Object],[object Object],[object Object],[object Object]
 
Pauling’s Structure ,[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object]
The Principle Protagonists
Principle Objections to the Kekule Structure ,[object Object],[object Object],[object Object]
THERMODYNAMIC EVIDENCE FOR STABILITY When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured.
ENTHALPY OF HYDROGENATION (1) ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
THERMODYNAMIC EVIDENCE FOR STABILITY 2 3 - 120 kJ mol -1 When cyclohexene (one C=C bond) is reduced to cyclohexane, 120kJ of energy is released per mole. C 6 H 10 (l)  +  H 2 (g)  ——>  C 6 H 12 (l) When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured.
THERMODYNAMIC EVIDENCE FOR STABILITY 2 3 - 120 kJ mol -1 Theoretical - 360 kJ mol -1 (3 x -120) When cyclohexene (one C=C bond) is reduced to cyclohexane, 120kJ of energy is released per mole. C 6 H 10 (l)  +  H 2 (g)  ——>  C 6 H 12 (l) Theoretically, if benzene contained three separate C=C bonds it would release 360kJ per mole when reduced to cyclohexane C 6 H 6 (l)  + 3H 2 (g)  ——>  C 6 H 12 (l ) When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured .
THERMODYNAMIC EVIDENCE FOR STABILITY 2 3 Experimental - 208 kJ mol -1 - 120 kJ mol -1 Theoretical - 360 kJ mol -1 (3 x -120) When cyclohexene (one C=C bond) is reduced to cyclohexane, 120kJ of energy is released per mole. C 6 H 10 (l)  +  H 2 (g)  ——>  C 6 H 12 (l) Theoretically, if benzene contained three separate C=C bonds it would release 360kJ per mole when reduced to cyclohexane C 6 H 6 (l)  + 3H 2 (g)  ——>  C 6 H 12 (l) Actual benzene releases only 208kJ per mole when reduced, putting it lower down the energy scale When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured.
THERMODYNAMIC EVIDENCE FOR STABILITY 2 3 When cyclohexene (one C=C bond) is reduced to cyclohexane, 120kJ of energy is released per mole. C 6 H 10 (l)  +  H 2 (g)  ——>  C 6 H 12 (l) Theoretically, if benzene contained three separate C=C bonds it would release 360kJ per mole when reduced to cyclohexane C 6 H 6 (l)  + 3H 2 (g)  ——>  C 6 H 12 (l) Actual benzene releases only 208kJ per mole when reduced, putting it lower down the energy scale It is 152kJ per mole more stable than expected. This value is known as the RESONANCE ENERGY. When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured. MORE STABLE THAN EXPECTED by  152 kJ mol -1 Experimental - 208 kJ mol -1 -  120   kJ mol -1 Theoretical - 360 kJ mol -1 (3 x -120)
THERMODYNAMIC EVIDENCE FOR STABILITY 2 3 MORE STABLE THAN EXPECTED by  152 kJ mol -1 Experimental - 208 kJ   mol -1 - 120 kJ mol -1 Theoretical - 360 kJ mol -1 (3 x -120) When cyclohexene (one C=C bond) is reduced to cyclohexane, 120kJ of energy is released per mole. C 6 H 10 (l)  +  H 2 (g)  ——>  C 6 H 12 (l) Theoretically, if benzene contained three separate C=C bonds it would release 360kJ per mole when reduced to cyclohexane C 6 H 6 (l)  + 3H 2 (g)  ——>  C 6 H 12 (l) Actual benzene releases only 208kJ per mole when reduced, putting it lower down the energy scale It is 152kJ per mole more stable than expected. This value is known as the RESONANCE ENERGY. When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured .
ENTHALPY OF HYDROGENATION (2) (Energies in kcal/mol. Multiply by 4.2 for kJ/mol)
X-Ray Diffraction Data ,[object Object],[object Object],[object Object]
STRUCTURE OF BENZENE -  DELOCALISATION The currently accept theory is that instead of benzene having three localised (in one position) double bonds, the six p (p) electrons making up those bonds are  delocalised  (not in any one particular position) around the ring by overlapping the p orbitals.  There would be no double bonds and all bond lengths would be equal.  This gives a  planar   structure . 6 single bonds
STRUCTURE OF BENZENE -  DELOCALISATION 6 single bonds one way to overlap adjacent p orbitals The currently accepted theory is that instead of benzene having three localised (in one position) double bonds, the six p (  ) electrons making up those bonds are  delocalised  (not in any one particular position) around the ring by overlapping the p orbitals.  There are no double bonds and all bond lengths are equal.  This gives a  planar   structure .
STRUCTURE OF BENZENE -  DELOCALISATION 6 single bonds one way to overlap adjacent p orbitals another possibility The currently accepted theory is that instead of benzene having three localised (in one position) double bonds, the six p (  ) electrons making up those bonds are  delocalised  (not in any one particular position) around the ring by overlapping the p orbitals.  There are no double bonds and all bond lengths are equal.  This also gives a  planar   structure .
STRUCTURE OF BENZENE -  DELOCALISATION 6 single bonds one way to overlap adjacent p orbitals delocalised pi orbital system another possibility The currently accepted theory is that instead of benzene having three localised (in one position) double bonds, the six p (  ) electrons making up those bonds are  delocalised  (not in any one particular position) around the ring by overlapping the p orbitals.  There are no double bonds and all bond lengths are equal.  This also gives a  planar   structure .
STRUCTURE OF BENZENE -  DELOCALISATION 6 single bonds one way to overlap adjacent p orbitals delocalised pi orbital system another possibility This final structure was particularly stable and resisted attempts to break it down through normal electrophilic addition.  However, substitution of any hydrogen atoms would not affect the delocalisation. The currently accepted theory is that instead of benzene having three localised (in one position) double bonds,  the six p (  ) electrons making up those bonds are  delocalised  (not in any one particular position) around the ring by overlapping the p orbitals.  There are no double bonds and all bond lengths are equal.  This also gives a  planar   structure .
Currently Accepted Structure of Benzene
STRUCTURE OF BENZENE ANIMATION
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13a. Intro To Aromatic Chemistry (Alan)

  • 1. THE CHEMISTRY OF ARENES Foundation Chemistry Semester 2 Mr A J Crooks
  • 2.
  • 3.
  • 4.
  • 5. What are Arenes? Compounds that include benzene and compounds that resemble benzene in certain of their chemical properties . Common aromatic compounds other than benzene include toluene, naphthalene, and anthracene (all of which are present in coal tar). So What is the structure of benzene and why does it make it special? Toluene Naphthalene Anthracene AKA: Aromatic Compounds
  • 6.
  • 7. STRUCTURE OF BENZENE Primary analysis revealed benzene had... an empirical formula of CH and a molecular mass of 78 and a formula of C 6 H 6
  • 8.
  • 9. STRUCTURE OF BENZENE Kekulé suggested that benzene was... PLANAR CYCLIC and HAD ALTERNATING DOUBLE AND SINGLE BONDS
  • 10.
  • 11.  
  • 12.
  • 13.
  • 14.
  • 15.
  • 16.
  • 17.
  • 18.  
  • 19.
  • 20.
  • 22.
  • 23. THERMODYNAMIC EVIDENCE FOR STABILITY When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured.
  • 24.
  • 25. THERMODYNAMIC EVIDENCE FOR STABILITY 2 3 - 120 kJ mol -1 When cyclohexene (one C=C bond) is reduced to cyclohexane, 120kJ of energy is released per mole. C 6 H 10 (l) + H 2 (g) ——> C 6 H 12 (l) When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured.
  • 26. THERMODYNAMIC EVIDENCE FOR STABILITY 2 3 - 120 kJ mol -1 Theoretical - 360 kJ mol -1 (3 x -120) When cyclohexene (one C=C bond) is reduced to cyclohexane, 120kJ of energy is released per mole. C 6 H 10 (l) + H 2 (g) ——> C 6 H 12 (l) Theoretically, if benzene contained three separate C=C bonds it would release 360kJ per mole when reduced to cyclohexane C 6 H 6 (l) + 3H 2 (g) ——> C 6 H 12 (l ) When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured .
  • 27. THERMODYNAMIC EVIDENCE FOR STABILITY 2 3 Experimental - 208 kJ mol -1 - 120 kJ mol -1 Theoretical - 360 kJ mol -1 (3 x -120) When cyclohexene (one C=C bond) is reduced to cyclohexane, 120kJ of energy is released per mole. C 6 H 10 (l) + H 2 (g) ——> C 6 H 12 (l) Theoretically, if benzene contained three separate C=C bonds it would release 360kJ per mole when reduced to cyclohexane C 6 H 6 (l) + 3H 2 (g) ——> C 6 H 12 (l) Actual benzene releases only 208kJ per mole when reduced, putting it lower down the energy scale When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured.
  • 28. THERMODYNAMIC EVIDENCE FOR STABILITY 2 3 When cyclohexene (one C=C bond) is reduced to cyclohexane, 120kJ of energy is released per mole. C 6 H 10 (l) + H 2 (g) ——> C 6 H 12 (l) Theoretically, if benzene contained three separate C=C bonds it would release 360kJ per mole when reduced to cyclohexane C 6 H 6 (l) + 3H 2 (g) ——> C 6 H 12 (l) Actual benzene releases only 208kJ per mole when reduced, putting it lower down the energy scale It is 152kJ per mole more stable than expected. This value is known as the RESONANCE ENERGY. When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured. MORE STABLE THAN EXPECTED by 152 kJ mol -1 Experimental - 208 kJ mol -1 - 120 kJ mol -1 Theoretical - 360 kJ mol -1 (3 x -120)
  • 29. THERMODYNAMIC EVIDENCE FOR STABILITY 2 3 MORE STABLE THAN EXPECTED by 152 kJ mol -1 Experimental - 208 kJ mol -1 - 120 kJ mol -1 Theoretical - 360 kJ mol -1 (3 x -120) When cyclohexene (one C=C bond) is reduced to cyclohexane, 120kJ of energy is released per mole. C 6 H 10 (l) + H 2 (g) ——> C 6 H 12 (l) Theoretically, if benzene contained three separate C=C bonds it would release 360kJ per mole when reduced to cyclohexane C 6 H 6 (l) + 3H 2 (g) ——> C 6 H 12 (l) Actual benzene releases only 208kJ per mole when reduced, putting it lower down the energy scale It is 152kJ per mole more stable than expected. This value is known as the RESONANCE ENERGY. When unsaturated hydrocarbons are reduced to the corresponding saturated compound, energy is released. The amount of heat liberated per mole (enthalpy of hydrogenation) can be measured .
  • 30. ENTHALPY OF HYDROGENATION (2) (Energies in kcal/mol. Multiply by 4.2 for kJ/mol)
  • 31.
  • 32. STRUCTURE OF BENZENE - DELOCALISATION The currently accept theory is that instead of benzene having three localised (in one position) double bonds, the six p (p) electrons making up those bonds are delocalised (not in any one particular position) around the ring by overlapping the p orbitals. There would be no double bonds and all bond lengths would be equal. This gives a planar structure . 6 single bonds
  • 33. STRUCTURE OF BENZENE - DELOCALISATION 6 single bonds one way to overlap adjacent p orbitals The currently accepted theory is that instead of benzene having three localised (in one position) double bonds, the six p (  ) electrons making up those bonds are delocalised (not in any one particular position) around the ring by overlapping the p orbitals. There are no double bonds and all bond lengths are equal. This gives a planar structure .
  • 34. STRUCTURE OF BENZENE - DELOCALISATION 6 single bonds one way to overlap adjacent p orbitals another possibility The currently accepted theory is that instead of benzene having three localised (in one position) double bonds, the six p (  ) electrons making up those bonds are delocalised (not in any one particular position) around the ring by overlapping the p orbitals. There are no double bonds and all bond lengths are equal. This also gives a planar structure .
  • 35. STRUCTURE OF BENZENE - DELOCALISATION 6 single bonds one way to overlap adjacent p orbitals delocalised pi orbital system another possibility The currently accepted theory is that instead of benzene having three localised (in one position) double bonds, the six p (  ) electrons making up those bonds are delocalised (not in any one particular position) around the ring by overlapping the p orbitals. There are no double bonds and all bond lengths are equal. This also gives a planar structure .
  • 36. STRUCTURE OF BENZENE - DELOCALISATION 6 single bonds one way to overlap adjacent p orbitals delocalised pi orbital system another possibility This final structure was particularly stable and resisted attempts to break it down through normal electrophilic addition. However, substitution of any hydrogen atoms would not affect the delocalisation. The currently accepted theory is that instead of benzene having three localised (in one position) double bonds, the six p (  ) electrons making up those bonds are delocalised (not in any one particular position) around the ring by overlapping the p orbitals. There are no double bonds and all bond lengths are equal. This also gives a planar structure .
  • 38. STRUCTURE OF BENZENE ANIMATION
  • 39. Now Try the Review Questions!