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Decrypting Transition States by Light: Photoisomerization as a Mechanistic Tool in Brønsted Acid Catalysis

机译:通过光解密过渡态:光异构化作为布朗斯台德酸催化中的一种机械工具

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摘要

Despite the wide applicability of enantioselective Brønsted acid catalysis, experimental insight into transition states is very rare, and most of the mechanistic knowledge is gained by theoretical calculations. Here, we present an alternative approach (decrypting transition state by light = DTS-hν), which enables the decryption of the transition states involved in chiral phosphoric acids catalyzed addition of nucleophiles to imines. Photoisomerization of double bonds is employed as a mechanistic tool. For this class of reactions four pathways (Type I Z, Type I E, Type II Z, Type II E) are possible, leading to different enantiomers depending on the imine configuration (E- or Z-imine) and on the nucleophilic attack site (top or bottom). We demonstrated that the imine double bond can be isomerized by light (365 nm LED) during the reaction leading to a characteristic fingerprint pattern of changes in reaction rate and enantioselectivity. This characteristic fingerprint pattern is directly correlated to the transition states involved in the transformation. Type I Z and Type II Z are demonstrated to be the competing pathways for the asymmetric transfer hydrogenation of ketimines, while in the nucleophilic addition of acetylacetone to N-Boc protected aldimines Type I E and Type II E are active. Accelerations on reaction rate up to 177% were observed for ketimines reduction. Our experimental findings are supported by quantum chemical calculations and noncovalent interaction analysis.
机译:尽管对映选择性布朗斯台德酸催化具有广泛的适用性,但对过渡态的实验性了解却很少,而且大部分机械知识是通过理论计算获得的。在这里,我们提出了另一种方法(通过光解密过渡态=DTS-hν),该方法能够解密涉及手性磷酸催化的亲核试剂向亚胺加成的过渡态。双键的光异构化被用作机制工具。对于此类反应,可能存在四种途径(IZ型,IE型,II型Z型,II型E型),从而导致不同的对映异构体,具体取决于亚胺构型(E-或Z-亚胺)和亲核攻击位点(顶部)或底部)。我们证明了亚胺双键可以在反应过程中被光(365 nm LED)异构化,从而导致反应速率和对映选择性变化的特征指纹图谱。该特征指纹图案与变换中涉及的过渡状态直接相关。已证明I Z型和II Z型是酮亚胺不对称转移氢化的竞争途径,而在乙酰丙酮向N-Boc保护的醛亚胺的亲核加成中,I E型和II E型活跃。对于酮亚胺的还原,观察到加速至高达177%的反应速率。我们的实验结果得到了量子化学计算和非共价相互作用分析的支持。

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