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In an electrophilic aromatic substitution reaction, an electrophile substitutes for a hydrogen of an aromatic compound.

Figure1

Many functional groups can be added to aromatic compounds by these reactions. All electrophilic aromatic substitution reactions occur via a two-step mechanism. In the first step, the π system of the aromatic ring reacts with an electrophile, forming an arenium ion, which is resonance-stabilized. It is often referred to as a sigma complex because the electrophile forms a sigma bond with the aromatic ring.

Figure2

In the second step, deprotonation of the arenium ion restores aromaticity and gives the substituted product.

Figure3

The free energy diagram shows that the first step is relatively slow and endergonic because the ring loses its aromatic stability. This step is therefore the rate-determining step because of its higher free energy of activation. The second step is fast and exergonic because it restores the stability enhancing aromaticity. It has a lower free energy of activation. The overall electrophilic aromatic substitutions are exergonic reactions.

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Electrophilic Aromatic SubstitutionAromatic CompoundElectrophileFunctional GroupTwo step MechanismArenium IonSigma ComplexDeprotonationAromaticityRate determining StepFree Energy Diagram

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18.4 : Electrophilic Aromatic Substitution: Overview

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18.1 : 벤젠 유도체의 NMR 분광법

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18.2 : 벤질산 위치에서의 반응: 산화 및 환원

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18.3 : 벤질산 위치에서의 반응 : 할로겐화

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18.5 : 친전자성 방향족 치환: 벤젠의 염소화 및 브롬화

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18.6 : 친전자성 방향족 치환: 벤젠의 불소화 및 요오드화

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18.7 : 친전자성 방향족 치환: 벤젠의 질화

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18.8 : 친전자성 방향족 치환: 벤젠의 설폰화

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18.9 : 친전자성 방향족 치환: Friedel–Crafts 벤젠의 알킬화

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18.10 : 친전자성 방향족 치환: Friedel–Crafts 벤젠의 아실화

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18.11 : Friedel-Crafts 반응의 한계

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18.12 : 치환의 지시 효과: ortho-para-directing groups

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18.13 : 치환의 지시 효과: 메타 지시 그룹

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18.14 : 직교-파라-디렉팅 활성제: -CH3, -OH, -⁠NH2, -OCH3

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18.15 : ortho-para-directing Deactivators: 할로겐

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