Zelinsky Institute of Organic Chemistry , Russian Academy of Sciences , Leninsky Prospect 47 , Moscow 119991 , Russia.
Inorg Chem. 2019 Sep 16;58(18):12218-12227. doi: 10.1021/acs.inorgchem.9b01630. Epub 2019 Aug 26.
It has recently been shown that palladium-catalyzed reactions with N-heterocyclic carbene (NHC) ligands involve R-NHC coupling accompanied by transformation of the molecular catalytic system into the nanoscale catalytic system. An important question appeared in this regard is whether such a change in the catalytic system is irreversible. More specifically, is the reverse nano-to-molecular transformation possible? In view of the paramount significance of this question to the area of catalyst design, we studied the capability of 2-substituted azolium salts to undergo the breakage of C-C bond and exchange substituents on the carbene carbon with corresponding aryl halides in the presence of Pd nanoparticles. The study provides important experimental evidence of possibility of the reversible R-NHC coupling. The observed behavior indicates that the nanosized metal species are capable of reverse transition to molecular species. Such an option, known for phosphine ligands, was previously unexplored for NHC ligands. The present study for the first time demonstrates bidirectional dynamic transitions between the molecular and nanostructured states in Pd/NHC systems. As a unique feature, surprisingly small activation barriers (<18 kcal/mol) and noticeable thermodynamic driving force (-5 to -7 kcal/mol) were calculated for C-C bond oxidative addition to Pd(0) centers in the studied system. The first example of NHC-mediated Pd leaching from metal nanoparticles to solution was observed and formation of Pd/NHC complex in solution was detected by ESI-MS.
最近已经表明,钯催化反应与 N-杂环卡宾(NHC)配体涉及 R-NHC 偶联,同时将分子催化体系转化为纳米催化体系。在这方面出现了一个重要的问题,即这种催化体系的变化是否是不可逆的。更具体地说,纳米到分子的反向转化是否可能?考虑到这个问题对催化剂设计领域的重要性,我们研究了 2-取代的唑盐在钯纳米粒子存在下,与相应的芳基卤化物发生 C-C 键断裂和卡宾碳原子上取代基交换的能力。该研究为 R-NHC 偶联的可逆性提供了重要的实验证据。观察到的行为表明,纳米尺寸的金属物种能够发生反向转化为分子物种。这种选择对于膦配体来说是已知的,但以前对于 NHC 配体来说是未知的。本研究首次证明了 Pd/NHC 体系中分子态和纳米结构态之间的双向动态转变。作为一个独特的特点,令人惊讶的小活化能垒(<18 kcal/mol)和显著的热力学驱动力(-5 到-7 kcal/mol)被计算出来,用于研究体系中 Pd(0)中心的 C-C 键氧化加成。首次观察到 NHC 介导的 Pd 从金属纳米粒子浸出到溶液中,并通过 ESI-MS 检测到溶液中 Pd/NHC 配合物的形成。