Department of Chemistry, Jadavpur University, Kolkata 700 032, India.
Dalton Trans. 2013 Sep 28;42(36):13210-9. doi: 10.1039/c3dt51359a. Epub 2013 Jul 24.
The generation and study of metal-hydroperoxo/metal-peroxo (LCu(II)-OOH or LCu(II)-OO˙) complexes is a fascinating area of research of many chemical and biochemical researchers, because of their involvement as active intermediates in many biological and industrial catalytic oxidation processes. For this purpose we have designed a bulky hexa-coordinating ligand with potential N4O2 donor atoms which could provide an opportunity to synthesize a mononuclear Cu(II) complex with an aim to utilize it in the catalytic oxidation of aromatic hydrocarbons by an environmentally benign oxidant, H2O2. The Cu(II) complex (1) was structurally characterized and found to have square-planar geometry with the two pyrazolyl groups remaining in dangling mode. A novel mononuclear complex [Et3NH][LCu(II)-OOH] (2) was found to form in the reaction between 1 and H2O2 in the presence of Et3N. The presence of this dangling groups favours the stability of hydroperoxo species, LCu-OOH (2) through H-bonding with the coordinated phenoxo oxygen atom, which was confirmed by ESI-MS(+) and MS(-) (m/z) mass analysis and DFT calculations. This complex was found to be thermally stable at room temperature [k(d) = (5.67 ± 0.03) × 10(-5) s(-1) at 25 °C] and may be due to the formation of O-O-H···O(phenoxo) H-bonding as delineated by the DFT calculations. Complex 1 was found to be an efficient catalyst for the oxidation of aromatic hydrocarbons to the corresponding aldehyde and alcohol in 2:1 mole ratio with TON ~300.
金属-过氢氧根/金属过氧根(LCu(II)-OOH 或 LCu(II)-OO˙)配合物的生成和研究是许多化学和生物化学研究人员感兴趣的一个领域,因为它们作为许多生物和工业催化氧化过程中的活性中间体参与其中。为此,我们设计了一种具有潜在 N4O2 供体原子的庞大六配位配体,这为合成单核 Cu(II) 配合物提供了机会,目的是利用环境友好氧化剂 H2O2 催化氧化芳烃。Cu(II)配合物(1)进行了结构表征,发现其具有平面正方形几何形状,两个吡唑基处于悬垂状态。在存在 Et3N 的情况下,发现 1 与 H2O2 反应生成了新型单核配合物[Et3NH][LCu(II)-OOH](2)。这些悬垂基团的存在有利于过氧物种LCu-OOH(2)的稳定性,通过与配位的苯氧基氧原子形成氢键,这通过 ESI-MS(+)和 MS(-)(m/z)质谱分析和 DFT 计算得到证实。该配合物在室温下热稳定性高[k(d) = (5.67 ± 0.03) × 10(-5) s(-1),在 25 °C],这可能是由于 DFT 计算所示的 O-O-H···O(苯氧基)氢键的形成。配合物 1 被发现是芳烃氧化为相应醛和醇的有效催化剂,摩尔比为 2:1,TON~300。