
(a)
Interpretation:
Whether the given compound can undergo a Friedel–Crafts reaction, it is to be determined.
Concept introduction:
The Friedel–Crafts reaction is the electrophilic aromatic substitution reaction. In The Friedel–Crafts alkylation, the

Answer to Problem 23.51P
The given compound can undergo a Friedel–Crafts reaction as the aromatic ring is activated by two methyl groups.
Explanation of Solution
The given aromatic compound is:
In this aromatic compound, the benzene ring has two methyl groups attached. The alkyl groups are electron donating inductively, thus increases the electron density around the ring and activates it. As the ring is electron rich and activated it can undergo Friedel–Crafts reaction.
It is determined that a given compound can undergo Friedel–Crafts reaction based on the activation of aromatic ring.
(b)
Interpretation:
Whether the given compound can undergo a Friedel–Crafts reaction, it is to be determined.
Concept introduction:
The Friedel–Crafts reaction is the electrophilic aromatic substitution reaction. In The Friedel–Crafts alkylation, the aromatic compound reacts with alkyl halide in presence of

Answer to Problem 23.51P
The given compound cannot undergo a Friedel–Crafts reaction as the aromatic ring is deactivated by two acetyl groups.
Explanation of Solution
The given aromatic compound is:
In this aromatic compound, the benzene ring has two acetyl (carbonyl) groups attached. The carbonyl groups have electron withdrawing resonance effect, thus decreases the electron density around the ring and deactivates it. As the ring is electron poor and deactivated it cannot undergo Friedel–Crafts reaction.
It is determined that a given compound cannot undergo Friedel–Crafts reaction based on the deactivation of aromatic ring.
(c)
Interpretation:
Whether the given compound can undergo a Friedel–Crafts reaction, it is to be determined.
Concept introduction:
The Friedel–Crafts reaction is the electrophilic aromatic substitution reaction. In The Friedel–Crafts alkylation, the aromatic compound reacts with alkyl halide in presence of

Answer to Problem 23.51P
The given compound cannot undergo a Friedel–Crafts reaction as the aromatic ring is deactivated by nitrile groups.
Explanation of Solution
The given aromatic compound is:
In this aromatic compound, the benzene ring has nitrile group attached. The nitrile group have electron withdrawing resonance effect, thus decreases the electron density around the ring and deactivates it. As the ring is electron poor and deactivated it cannot undergo Friedel–Crafts reaction.
It is determined that a given compound cannot undergo Friedel–Crafts reaction based on the deactivation of aromatic ring.
(d)
Interpretation:
Whether the given compound can undergo a Friedel–Crafts reaction, it is to be determined.
Concept introduction:
The Friedel–Crafts reaction is the electrophilic aromatic substitution reaction. In The Friedel–Crafts alkylation, the aromatic compound reacts with alkyl halide in presence of

Answer to Problem 23.51P
The given compound cannot undergo a Friedel–Crafts reaction as the aromatic ring is deactivated by
Explanation of Solution
The given aromatic compound is:
In this aromatic compound, the benzene ring has
It is determined that a given compound cannot undergo Friedel–Crafts reaction based on the deactivation of aromatic ring.
(e)
Interpretation:
Whether the given compound can undergo a Friedel–Crafts reaction, it is to be determined.
Concept introduction:
The Friedel–Crafts reaction is the electrophilic aromatic substitution reaction. In The Friedel–Crafts alkylation, the aromatic compound reacts with alkyl halide in presence of

Answer to Problem 23.51P
The given compound cannot undergo a Friedel–Crafts reaction as the aromatic ring is deactivated by
Explanation of Solution
The given aromatic compound is:
In this aromatic compound, the benzene ring has
It is determined that a given compound cannot undergo Friedel–Crafts reaction based on the deactivation of aromatic ring.
(f)
Interpretation:
Whether the given compound can undergo a Friedel–Crafts reaction, it is to be determined.
Concept introduction:
The Friedel–Crafts reaction is the electrophilic aromatic substitution reaction. In The Friedel–Crafts alkylation, the aromatic compound reacts with alkyl halide in presence of

Answer to Problem 23.51P
The given compound can undergo a Friedel–Crafts reaction as the aromatic ring is activated by one methyl and one methoxy groups.
Explanation of Solution
The given aromatic compound is:
In this aromatic compound, the benzene ring has one methyl and one methoxy groups attached. The alkyl groups are electron donating inductively and methoxy group has electron donating resonance effect, thus increases the electron density around the ring and activates it. As the ring is electron rich and activated it can undergo Friedel–Crafts reaction.
It is determined that a given compound can undergo Friedel–Crafts reaction based on the activation of aromatic ring.
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Chapter 23 Solutions
Organic Chemistry: Principles And Mechanisms (second Edition)
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- 7. The three sets of replicate results below were accumulated for the analysis of the same sample. Pool these data to obtain the most efficient estimate of the mean analyte content and the standard deviation. Lead content/ppm: Set 1 Set 2 Set 3 1. 9.76 9.87 9.85 2. 9.42 9.64 9.91 3. 9.53 9.71 9.42 9.81 9.49arrow_forwardDraw the Zaitsev product famed when 2,3-dimethylpentan-3-of undergoes an El dehydration. CH₂ E1 OH H₁PO₁ Select Draw Templates More QQQ +H₂Oarrow_forwardComplete the clean-pushing mechanism for the given ether synthesia from propanol in concentrated sulfurica140°C by adding any mining aloms, bands, charges, nonbonding electron pairs, and curved arrows. Draw hydrogen bonded to cayan, when applicable. ore 11,0 HPC Step 1: Draw curved arrows Step 2: Complete the intend carved Q2Q 56 QQQ Step 3: Complete the intermediate and add curved Step 4: Modify the structures to draw the QQQ QQQarrow_forward
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