6.2
Many organic chemistry reactions proceed under acid or base-catalyzed conditions, including nucleophilic substitution reactions.
Consider a simple acid-base reaction of hydrochloric acid with sodium hydroxide. Here, the hydroxide ion is an electron-rich species and acts as a Lewis base. It deprotonates the acidic hydrogen, forming water and chloride ions as the conjugate base of HCl.
Now, consider a nucleophilic substitution reaction between chloromethane and sodium hydroxide. Sodium hydroxide remains the electron-rich component referred to as a nucleophile. The hydroxide ion is the conjugate base of water, which is a weak acid with a pKa of 15.7. Thus, it is a strong conjugate base and a strong nucleophile.
Chloromethane, on the other hand, is a primary alkyl halide. Here the electron-deficient component is analogous to a Lewis acid and is called an electrophile.
Similar to an acid-base reaction, the hydroxide ion reacts with the electrophile by donating its lone pair of electrons and forming a new bond with the carbon.
Simultaneously, the bond between the chloride, called the leaving group, and the carbon breaks, and the chloride ion leaves, taking both electrons with it.
However
Historical perspective
In 1896, the German chemist Paul Walden discovered that he could interconvert pure enantiomeric (+) and (-) malic acids through…
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