Q.How do you explain the amphoteric behaviour of amino acids?
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Start your 14-day free trial to unlock the full solution →Amino acids are amphoteric because they contain both an acidic carboxyl group () and a basic amino group (). In solution, they can act as either an acid (donating a proton) or a base (accepting a proton), depending on the pH. This dual nature leads to the formation of a zwitterion at a specific pH called the isoelectric point (pI).
The key to understanding amphoteric behaviour lies in the structure of an amino acid itself. Every standard amino acid has a central carbon (the -carbon) bonded to four groups: an amino group (), a carboxyl group (), a hydrogen atom, and a variable side chain (R-group). The carboxyl group is a relatively strong acid (pKa around 2), while the amino group is a weak base (pKa around 9-10). This built-in acid-base pair is the entire story.
In pure water or a neutral solution, the carboxyl group readily donates its proton to the amino group. This internal proton transfer creates a zwitterion — a molecule that is overall neutral but carries both a positive and a negative charge. The zwitterion is the dominant form of a free amino acid in the solid state and in neutral aqueous solution.
Here is how the amphoteric behaviour plays out step-by-step as the pH changes:
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At low pH (acidic conditions): The solution has an excess of ions. The carboxylate group () of the zwitterion is a strong base and gets protonated. The amino group () remains protonated because the environment is already rich in protons. The net result is a molecule with a positive charge (the cation form: ). In an electric field, it migrates toward the cathode (negative electrode).
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At high pH (basic conditions): The solution has an excess of ions. The ammonium group () is a weak acid and loses its proton to become a free amino group (). The carboxylate group () remains deprotonated. The net result is a molecule with a negative charge (the anion form: ). In an electric field, it migrates toward the anode (positive electrode). …
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