20.13
라디칼 반응은 분자간 또는 분자내에서 발생할 수 있습니다. 분자간 라디칼 반응에서 친핵성 라디칼이 친전자성 알켄에 추가되거나 그 반대의 경우도 마찬가지입니다. 이러한 반응에서 라디칼 트랩이라고도 하는 라디칼과 일반적으로 알켄은 두 개의 서로 다른 분자입니다. 또한 이러…
분자간 라디칼 반응에서 라디칼 트랩과 라디칼 트랩은 두 개의 다른 분자입니다.
라디칼 트랩은 활성화되고 고농도로 존재해야 하며, 라디칼 소스는 약한 탄소-헤테로원자 결합을 가져야 합니다.
이제, 친핵성 라디칼이 친핵성 이중 결합에 추가되어 고리화된 생성물을 생성하는 분자 내 라디칼 반응을 생각해 보십시오.
여기서 급진적 함정은 활성화되지도 않고 과도하게 존재하지도 않는다. C-S 결합도 상대적으로 강합니다.
그럼에도 불구하고 이러한 반응은 실현 가능하여 높은 제품 수율을 제공합니다. 왜 그렇습니까?
이는 분자 내 반응의 경우 라디칼 트랩과 라디칼 트랩이 동일한 분자의 일부이며 항상 밀접하게 유지되어 빠른 고리화를 선호하기 때문입니다.
결과적으로, 수소화물 공여체에 의한 급격한 환원의 가능성은 감소합니다.
더욱이, 라디칼 트랩은 반응성이 높거나 과도하지 않아 주석 수소화물 라디칼의 농도에 관계없이 라디칼과 반응할 가능성을 줄입니다.
따라서 분자 내 라디칼 반응은 매우 효율적이며 5원 고리를 합성하는 데 응용됩니다. 링 크기가 작을수록 링 변형이 나타납니다. 더 큰 반지 크기는 선호되지 않습니다.
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Q1: What are the key differences between intermolecular and intramolecular radical reactions?
In intermolecular radical reactions, the radical and radical trap are separate molecules, requiring the trap to be activated and present in high concentration. In intramolecular reactions, both are part of the same molecule, held closely together, enabling rapid cyclization without needing activation or excess concentration. This proximity makes intramolecular reactions far more efficient.
Q2: Why do intramolecular radical reactions proceed efficiently despite having strong carbon-heteroatom bonds?
Intramolecular reactions are efficient because the radical and radical trap are part of the same molecule, keeping them in close proximity. This favors rapid cyclization and prevents radical reduction by hydride donors. The radical trap, being neither highly reactive nor in excess, resists competing reactions with tributyltin hydride radicals, ensuring high product yield.
Q3: What ring sizes are preferred in intramolecular radical cyclization reactions?
Five-membered rings are the preferred product of intramolecular radical cyclization. Smaller ring sizes experience significant ring strain, making them unfavorable. Larger ring sizes are also not preferred, as they reduce the efficiency of the cyclization process and lower product yields.
Q4: How does molecular proximity affect the outcome of intramolecular radical reactions?
Molecular proximity is crucial in intramolecular reactions because the radical and radical trap remain held closely together within the same molecule. This close association dramatically increases the rate of cyclization and minimizes side reactions. The result is rapid, efficient bond formation with minimal competing pathways.
Q5: What conditions must be met for intermolecular radical reactions to occur successfully?
Intermolecular radical reactions require three key conditions: the radical trap must be activated, present in high concentration, and the radical source must have a weak carbon-halogen bond. These requirements ensure sufficient collision frequency and reactivity between separate molecules to generate acceptable product yields.
Q6: How does the presence of a hydride donor affect intramolecular versus intermolecular radical reactions?
In intermolecular reactions, hydride donors can reduce radicals, competing with trap addition and lowering yields. In intramolecular reactions, rapid cyclization minimizes the opportunity for hydride reduction. Additionally, the radical trap's low reactivity and lack of excess concentration reduce its competition with hydride donors, preserving reaction efficiency.
Q7: Why is the concentration of the radical trap critical in intermolecular but not intramolecular radical reactions?
In intermolecular reactions, high radical trap concentration increases collision probability with the radical, driving product formation. In intramolecular reactions, the trap is already bound to the radical within the same molecule, eliminating the need for high concentration. This inherent proximity ensures efficient reaction regardless of bulk concentration.