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环丙基羟卡宾。

Cyclopropylhydroxycarbene.

机构信息

Justus-Liebig University, Heinrich-Buff-Ring 58, 35392 Giessen, Germany.

出版信息

J Am Chem Soc. 2011 Aug 31;133(34):13614-21. doi: 10.1021/ja204507j. Epub 2011 Aug 10.

DOI:10.1021/ja204507j
PMID:21793579
Abstract

Cyclopropylhydroxycarbene was generated by high-vacuum flash pyrolysis of cyclopropylglyoxylic acid at 960 °C. The pyrolysis products were matrix-isolated in solid Ar at 11 K and characterized by means of IR spectroscopy. Upon photolysis, the carbene undergoes ring expansion, thereby paralleling the reactivity of other known cyclopropylcarbenes. The ring expansion product, cyclobut-1-en-1-ol, was characterized for the first time. Matrix-isolated cyclopropylhydroxycarbene undergoes [1,2]H-tunneling through a barrier of approximately 30 kcal·mol(-1), yielding cyclopropylcarboxaldehyde. The cyclopropyl moiety acts as a π-donor and increases the half-life by almost a factor of 10 compared to parent hydroxymethylene, resulting in a temperature-independent half-life of τ = 17.8 h at both 11 and 20 K. Hence, cyclopropylhydroxycarbene is the first hydroxycarbene that differs from other members of its family by a significantly prolonged half-life. As expected, the O-deuterated analogue does not show tunneling. Our findings are rationalized by accurate CCSD(T)/cc-pVnZ (n = D, T)//M06-2X/6-311++G(d,p) computations. The half-life of cyclopropylhydroxycarbene was verified by tunneling computations employing the Wentzel-Kramers-Brillouin formalism. By comparison with other experimentally known hydroxycarbenes, we determine the electronic donor capabilities of the carbenes' substituents to be a dominant factor governing their half-lives.

摘要

环丙基羟甲炔由环丙基乙醛酸在 960°C 下进行高真空闪蒸热解生成。热解产物在 11 K 的固态 Ar 中进行矩阵隔离,并通过红外光谱进行表征。光解时,碳烯经历环扩张,从而与其他已知的环丙基碳烯具有相似的反应性。首次对环扩张产物环丁-1-烯-1-醇进行了表征。在矩阵隔离中,环丙基羟甲炔通过约 30 kcal·mol(-1)的势垒进行[1,2]H 隧穿,生成环丙基乙醛。环丙基部分作为π供体,与母体羟亚甲基相比,半衰期增加了近 10 倍,在 11 和 20 K 时半衰期τ为 17.8 h,与温度无关。因此,环丙基羟甲炔是第一个半衰期明显延长的羟甲炔,与该家族的其他成员不同。正如预期的那样,O-氘代类似物没有隧穿。我们的发现通过精确的 CCSD(T)/cc-pVnZ(n = D,T)//M06-2X/6-311++G(d,p)计算得到了合理化。环丙基羟甲炔的半衰期通过采用 Wentzel-Kramers-Brillouin 形式的隧穿计算得到了验证。通过与其他实验已知的羟甲炔进行比较,我们确定了碳烯取代基的电子给体能力是决定其半衰期的主要因素。

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