Which of the following compounds will undergo an Sn2 reaction most readily: (CH_3)_3C CH_2I(CH3)3CCH2I or (CH_3)_2CHI(CH3)2CHI?

1 Answer
Ari · Ernest Z. · Media Owl
Nov 2, 2014

(CH_3)_2CHI(CH3)2CHI will undergo an S_N2SN2 reaction more readily than(CH_3)_3C CH_2I(CH3)3CCH2I .

To make this question less complicated, it is helpful to draw the structures of both compounds as shown in the image below:

enter image source here

Take a look at the carbon atom bound directly to the iodine.

For (CH_3)_2CHI(CH3)2CHI(isopropyl iodide), the carbon is bound to the iodine, one hydrogen, and two other carbons. This is called a secondary halide (secondary meaning bound to two carbons).

An incoming nucleophile will often react with whatever electrophile it can reach most easily. In technical terms, a secondary halide is more sterically hindered than a primary halide, so S_N2SN2 will occur more readily at the primary halide.

We should therefore expect the isopropyl iodide to have the slower reaction rate.

In (CH_3)_3C CH_2I(CH3)3CCH2I (neopentyl iodide), in addition to iodine, the carbon atom is bound to two hydrogen atoms and only one other carbon. This is called a primary halide (primary meaning bound to only one carbon).

You would therefore expect this compound to have the fastest "S"_"N"2SN2 reaction rate. But there is a complication.

The bulky t-butyl group prevents backside attack by the nucleophile.

![Chemical structures of compound http://molecules.](http://www.kshitij-school.com/Study-Material/Class-12/Organic-chemistry/Ionic-reactions/Organic-chemistry-chapter1-image/56.jpg)

The steric hindrance is so effective that isopropyl iodide reacts almost 3000 times as fast as neopentyl iodide.

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