P. Roy and Diana T. Vagelos Laboratories, Department of Chemistry, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.
J Am Chem Soc. 2015 Jun 10;137(22):7135-44. doi: 10.1021/jacs.5b02201. Epub 2015 May 29.
Shibasaki's rare earth alkali metal BINOLate (REMB) catalysts (REMB; RE = Sc, Y, La - Lu; M = Li, Na, K; B = 1,1-bi-2-naphtholate; RE/M/B = 1/3/3) are among the most successful enantioselective catalysts and have been employed in a broad range of mechanistically diverse reactions. Despite the phenomenal success of these catalysts, several fundamental questions central to their reactivity remain unresolved. Combined reactivity and spectroscopic studies were undertaken to probe the identity of the active catalyst(s) in Lewis-acid (LA) and Lewis-acid/Brønsted-base (LA/BB) catalyzed reactions. Exchange spectroscopy provided a method to obtain rates of ligand and alkali metal self-exchange in the RE/Li frameworks, demonstrating the utility of this technique for probing solution dynamics of REMB catalysts. Isolation of the first crystallographically characterized REMB complex with substrate bound enabled stoichiometric and catalytic reactivity studies, wherein we observed that substrate deprotonation by the catalyst framework was necessary to achieve selectivity. Our spectroscopic observations in LA/BB catalysis are inconsistent with previous mechanistic proposals, which considered only tris(BINOLate) species as active catalysts. These findings significantly expand our understanding of the catalyst structure in these privileged multifunctional frameworks and identify new directions for development of new catalysts.
桥崎手性稀土金属 BINOL 配合物(REMB)催化剂(REMB;RE = Sc、Y、La - Lu;M = Li、Na、K;B = 1,1-联萘-2-醇;RE/M/B = 1/3/3)是最成功的对映选择性催化剂之一,已广泛应用于各种具有不同机理的反应中。尽管这些催化剂取得了巨大的成功,但仍有几个与它们的反应性相关的基本问题尚未解决。通过结合反应性和光谱研究,我们探究了在路易斯酸(LA)和路易斯酸/布朗斯台德碱(LA/BB)催化反应中活性催化剂的身份。交换光谱法提供了一种获取 RE/Li 骨架中配体和碱金属自交换速率的方法,证明了该技术在探测 REMB 催化剂溶液动力学方面的实用性。首次分离出具有底物结合的结晶结构特征的 REMB 配合物,使我们能够进行化学计量和催化反应研究,从而观察到催化剂骨架对底物进行去质子化是实现选择性所必需的。我们在 LA/BB 催化中的光谱观察结果与之前仅考虑三(BINOL 配体)物种作为活性催化剂的机理假设不一致。这些发现极大地扩展了我们对这些多功能框架中催化剂结构的理解,并为开发新型催化剂指明了新的方向。