Capriati Vito, Florio Saverio, Luisi Renzo, Perna Filippo Maria, Spina Agnese
Dipartimento Farmaco-Chimico, Università di Bari, Consorzio Interuniversitario Nazionale Metodologie e Processi Innovativi di Sintesi C.I.N.M.P.I.S., Via E. Orabona 4, I-70125 Bari, Italy.
J Org Chem. 2008 Dec 19;73(24):9552-64. doi: 10.1021/jo801646e.
Chemical studies have shown that, in ethereal solvents, oxiranyllithium Li-1 is configurationally unstable either on the macroscopic (Hoffmann's text) or microscopic time scale at low temperature (175 K). An optically pure sample of oxazolinyloxirane 1, once deprotonated, racemized within 1 min at -130 degrees C in THF/Et(2)O (3:2) (t(1/2) = 6.05 s); the application of the Eyring equation suggested a barrier to inversion for Li-1 of 8.8 kcal/mol at -130 degrees C. Despite this, Li-1 exhibited an unusual thermal stability undergoing a successfully deuterium incorporation (>98%) also at 25 degrees C with a little decomposition. The structure, configurational stability, and stereodynamics in solution of alpha-lithiated oxazolinyloxirane Li-1 have been also synergically investigated by means of in situ IR and NMR spectroscopy. IR spectroscopic studies showed that lithiation of 1 is complete at -98 degrees C within 1 min and is accompanied by a decrease of the CN wavenumber by only 60 cm(-1), so supporting the idea that the structure of Li-1 may be more similar to that of an "organolithium" rather than an "azaenolate". In addition to this, multinuclear magnetic resonance studies suggested that at least in a range of concentration of 0.08-0.3 M, Li-1 mainly exists in THF as a monomeric eta(3)-aza-allyl coordinated species rapidly equilibrating, on the NMR time scale, with a complex mixture of diastereomeric oxazoline-bridged dimeric species variously intraaggregated. An exchange mechanism by which monomers would interchange their Li atoms via one of the above dimeric species and which may be responsible for the fast racemization Li-1 undergoes as soon as is generated has been proposed.
化学研究表明,在醚类溶剂中,环氧乙烷基锂Li-1在低温(175K)下,无论是在宏观(霍夫曼的文本)还是微观时间尺度上,构型都不稳定。一旦去质子化,光学纯的恶唑啉基环氧乙烷1样品在-130℃的THF/Et₂O(3:2)中1分钟内就会发生外消旋(t₁/₂ = 6.05秒);应用艾林方程表明,在-130℃时Li-1的反转势垒为8.8千卡/摩尔。尽管如此,Li-1仍表现出不寻常的热稳定性,即使在25℃时也能成功进行氘掺入(>98%),且只有少量分解。还通过原位红外光谱和核磁共振光谱协同研究了α-锂化恶唑啉基环氧乙烷Li-1在溶液中的结构、构型稳定性和立体动力学。红外光谱研究表明,1在-98℃下1分钟内锂化完全,且伴随着CN波数仅降低60厘米⁻¹,因此支持了Li-1的结构可能更类似于“有机锂”而非“氮杂烯醇盐”的观点。除此之外,多核核磁共振研究表明,至少在0.08 - 0.3M的浓度范围内,Li-1在THF中主要以单体η³-氮杂烯丙基配位物种存在,在核磁共振时间尺度上与各种内聚的非对映异构恶唑啉桥联二聚体物种的复杂混合物快速平衡。已经提出了一种交换机制,即单体通过上述二聚体物种之一交换其锂原子,这可能是Li-1一旦生成就迅速发生外消旋的原因。