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由光致电子转移驱动的催化对映选择性反应。

Catalytic enantioselective reactions driven by photoinduced electron transfer.

作者信息

Bauer Andreas, Westkämper Felix, Grimme Stefan, Bach Thorsten

机构信息

Lehrstuhl für Organische Chemie I, Technische Universität München, Lichtenbergstr. 4, D-85747 Garching, Germany.

出版信息

Nature. 2005 Aug 25;436(7054):1139-40. doi: 10.1038/nature03955.

Abstract

Photoinduced electron transfer is an essential step in the conversion of solar energy into chemical energy in photosystems I and II (ref. 1), and is also frequently used by chemists to build complex molecules from simple precursors. During this process, light absorption generates molecules in excited electronic states that are susceptible to accepting or donating electrons. But although the excited states are straightforward to generate, their short lifetimes makes it challenging to control electron transfer and subsequent product formation-particularly if enantiopure products are desired. Control strategies developed so far use hydrogen bonding, to embed photochemical substrates in chiral environments and to render photochemical reactions enantioselective through the use of rigid chiral complexing agents. To go beyond such stoichiometric chiral information transmission, catalytic turnover is required. Here we present a catalytic photoinduced electron transfer reaction that proceeds with considerable turnover and high enantioselectivity. By using an electron accepting chiral organocatalyst that enforces a chiral environment on the substrate through hydrogen bonding, we obtain the product in significant enantiomeric excess (up to 70%) and in yields reaching 64%. This performance suggests that photochemical routes to chiral compounds may find use in general asymmetric synthesis.

摘要

光致电子转移是光系统I和II中将太阳能转化为化学能的关键步骤(参考文献1),并且化学家也经常利用这一过程从简单前体构建复杂分子。在此过程中,光吸收产生处于激发电子态的分子,这些分子易于接受或给出电子。但是,尽管激发态易于产生,但其短寿命使得控制电子转移及后续产物形成具有挑战性,特别是当需要对映体纯产物时。迄今为止开发的控制策略利用氢键作用,将光化学底物嵌入手性环境中,并通过使用刚性手性络合剂使光化学反应具有对映选择性。为了超越这种化学计量的手性信息传递,需要催化周转。在此,我们展示了一种具有可观周转数和高对映选择性的催化光致电子转移反应。通过使用一种通过氢键作用在底物上形成手性环境的电子接受型手性有机催化剂,我们获得了对映体过量显著(高达70%)且产率达到64%的产物。这一性能表明,通往手性化合物的光化学途径可能在一般不对称合成中得到应用。

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