Electronegative Substituent

An electronegative substituent is an atom or functional group in a molecule that draws electron density toward itself because of its relatively high electronegativity, influencing molecular polarity and reactivity. Through the inductive effect, it withdraws electron density through sigma bonds, while conjugated substituents can also redistribute electrons through resonance; these effects generally weaken with increasing distance from the substituent. In chemistry, analyzing electronegative substituents helps predict acidity, basicity, dipole moments, reaction mechanisms, and the stability of charged intermediates. This principle supports the interpretation and design of organic reactions and functional molecules.

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JoVE Core - Chemistry

Electronegativity

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2020

Whether a bond is nonpolar or polar covalent is determined by a property of the bonding atoms called electronegativity. Electronegativity values of the elements were proposed by one of the most famous chemists of the twentieth century: Linus Pauling. Pauling investigated the energies required to break bonds in heteronuclear molecules such as hydrogen and fluoride. Based on the values, he proposed that the energy required to break a bond will be the average of bond energies of H2 (436 kJ/mol)...

Directing Effect of Substituents: meta-Directing Groups

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2025

Substituents on the benzene ring that direct an incoming electrophile to undergo substitution at the meta position are called meta directors. All meta directors either have a positive charge on the atom directly bonded to the ring or a partial positive charge. These groups function by withdrawing electrons from the ring through inductive and resonance effects. Consider the carbocation intermediates formed upon the addition of an electrophile on nitrobenzene at the ortho, meta, and para...

Radical Substitution: Halogenation of Alkanes and Alkyl Substituents

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2023

In the presence of heat or light, alkanes react with molecular halogens to form alkyl halides by a substitution reaction called radical halogenation. This reaction has three steps: initiation, propagation, and termination, as seen in the radical chlorination of methane to produce methyl chloride. In the initiation step of the reaction, the chlorine molecule undergoes homolytic cleavage in the presence of light or heat, forming two highly reactive chlorine radicals. Propagation occurs in two...

Nomenclature of Aromatic Compounds with Multiple Substituents

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2025

When more than one substituent is present on the benzene ring, the IUPAC nomenclature depends on the number of substituents present. For disubstituted benzene derivatives, with two groups attached to the benzene ring, three constitutional isomers are possible. For example, consider dimethyl benzene, often called xylene, where the second methyl group can be substituted at the second, third, or fourth carbon. The relative position of the substituents is represented by prefixes ortho, meta, or...

Substituent Effects on Acidity of Carboxylic Acids

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2023

The acidity of carboxylic acids is influenced by the nature of the substituents bounded to the functional group. The acid strength is determined by the stability of the carboxylate anion—the conjugate base formed by dissociating the corresponding carboxylic acid. Suppose the carboxylic acid bears an electron-withdrawing substituent. In that case, it stabilizes the conjugate base through the electron-withdrawing inductive effect, thereby decreasing the electron density on the carboxylate anion...

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