Organic Chemistry I


Oxidative Cleavage of Alkenes



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10.7.2 Oxidative Cleavage of Alkenes
Cleavage with Ozone
With stronger oxidizing agent being applied, the C=C double bond of alkenes can be oxidatively cleaved, and the alkene
molecule is cleaved to smaller molecules.
The most effective way for cleaving alkene is to use ozone, O
3
, by a two-step process. Alkene is first reacted with
ozone at very low temperature (-78 °C) and then treated with dimethyl sulfide, (CH
3
)
2
S, (or Zn/CH
3
COOH) to give the
cleavage products. The whole process is called
ozonolysis
.
Figure 10.7e The process of Cleavage with Ozone
10.7 Oxidation Reactions of Alkenes | 353


Ozonolysis results in the cleavage of the double bond, and each double bond carbon get bonded to an oxygen atom
with a new double bond. The products of ozonolysis are aldehyde(s) and/or ketone(s), and the exact structures of the
products depends on the structure of the initial alkene:
• Disubstituted alkene carbons are oxidatively cleaved to ketone;
• Monosubstituted alkene carbons are oxidatively cleaved to aldehyde;
• Unsubstituted alkene carbons are oxidatively cleaved to formaldehyde (HCHO).
Examples
Show ozonolysis products of following reactions:
Hint
: To figure out the structure of ozonolysis product(s), “cut” the double bond, then “add” a “=O” (double
bonded oxygen) to each carbon.
354 | 10.7 Oxidation Reactions of Alkenes


As shown with above examples, ozonolysis reaction is useful as a synthetic tool for certain aldehyde and ketone.
Meanwhile, it is also a method for determining the position of double bonds in an alkene by working backward from the
structure of the products.
Examples
Determine the structure of the alkene:
Approach
: To determine the structure of initial alkene, we can work backwards by connecting two C=O
bonds in the products together. The two C=O bonds are “connected” to give a C=C bond with all oxygen atoms
“removed”. In this example, the two blue C=O bonds gives the blue C=C bond, and the two red C=O bonds gives
the red C=C bond.
10.7 Oxidation Reactions of Alkenes | 355



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