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Cooperativity and serial ligand catalysis in an allylic amination reaction by Pd(Ⅱ)-bis-sulfoxide and Bronsted acids

机译:Pd(Ⅱ)-双亚砜与布朗斯台德酸在烯丙基胺化反应中的协同作用和系列配体催化

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In recent years, transition metal catalysts have been increasingly employed in conjunction with Bronsted acids under one-pot reaction conditions, opening up newer avenues for dual catalytic protocols. Under such dual catalytic conditions, the general premise of holding the native ligands on the catalyst in the same manner throughout the catalytic cycle becomes immediately questionable. We have invoked the likelihood of Serial Ligand Catalysis in an important intramolecular allylic amination of N-Boc (N-tert-butoxycarbonyl) protected homoallylic amine leading to an anti-oxazolidinone product. The reported reaction conditions employed (bis-sulfoxide)Pd(OAc)(2) and dibutyl phosphoric acid (DBPOH) as the catalysts and benzoquinone (BQ) as the oxidant. We used density functional theory computations at the B3LYP-D3 level of theory to examine a comprehensive set of ligand combinations around the Pd center so as to identify the energetically most preferred pathway. The key catalytic events consist of (i) a C-H activation at the allylic position in the catalyst-substrate complex [Pd(L)(L ')(2)(substrate)], leading to a (L)(L ')Pd-pi-allyl intermediate, and (ii) an intramolecular C-O bond formation between the carbonyl oxygen of the N-Boc amine and the allyl carbon. Interesting cooperativity between the catalysts in both these steps has been found, wherein the Pd(DBPO-)(2)(BS) species is involved in the C-H activation transition state and Pd(DBPO-)(BQ) in the C-O bond formation step. The energetic advantage in swapping the bis-sulfoxide ligand on Pd with a benzoquinone upon moving from the first step to the second step confirms the significance of serial ligand catalysis in dual catalytic reactions.
机译:近年来,在一锅法反应条件下,过渡金属催化剂已越来越多地与布朗斯台德酸结合使用,为双催化方案开辟了新途径。在这样的双重催化条件下,在整个催化循环中以相同方式将天然配体保持在催化剂上的一般前提变得立即成问题。我们在重要的分子内烯丙基胺化N-Boc(N-叔丁氧基羰基)保护的均烯丙基胺中引起了连续配体催化的可能性,从而导致了抗恶唑烷酮产品的产生。报道的反应条件使用(二亚砜)Pd(OAc)(2)和二丁基磷酸(DBPOH)作为催化剂,使用苯醌(BQ)作为氧化剂。我们在B3LYP-D3理论水平上使用密度泛函理论计算来检查Pd中心周围的一组全面的配体组合,以便确定在能量上最优选的途径。关键的催化事件包括(i)催化剂-底物络合物[Pd(L)(L')(2)(底物)]的烯丙基位置处的CH活化,从而导致(L)(L')Pd -π-烯丙基中间体,和(ii)N-Boc胺的羰基氧与烯丙基碳之间的分子内CO键形成。已经发现在这两个步骤中催化剂之间有趣的合作性,其中Pd(DBPO-)(2)(BS)物种参与CH活化过渡态,而Pd(DBPO-)(BQ)参与CO键形成步骤。从第一步到第二步转移时,Pd上的双亚砜配体与苯醌交换的能量优势证实了连续配体催化在双重催化反应中的重要性。

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