Kametani Yohei, Ikeda Kei, Yoshizawa Kazunari, Shiota Yoshihito
Institute for Materials Chemistry and Engineering and IRCCS, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, Japan.
Inorg Chem. 2023 Aug 28;62(34):13765-13774. doi: 10.1021/acs.inorgchem.3c01383. Epub 2023 Aug 17.
The literature contains numerous reports of copper complexes for nitrite (NO) reduction. However, details of how protons and electrons arrive and how nitric oxide (NO) is released remain unknown. The influence of the coordination mode of nitrite on reactivity is also under debate. Kundu and co-workers have reported nitrite reduction by a copper(II) complex [J. Am. Chem. Soc. 2020, 142, 1726-1730]. In their report, the copper(II) complex reduced nitrite using a phenol derivative as a reductant, resulting in NO, a hydroxyl copper(II) complex, and the corresponding biphenol. Also, the involvement of proton-coupled electron transfer was proposed by mechanistic studies. Herein, density functional theory calculations were performed to determine a mechanism for reduction of nitrite by a copper(II) complex. As a result of geometry optimization of an initial complex, two possible structures were obtained: Cu-ONO and Cu-NO. Two possible reaction pathways initiated from Cu-ONO or Cu-NO were then considered. The calculation results indicated that the Cu-ONO pathway is energetically favorable. When changes in the electronic structure were considered, both pathways were found to involve concerted proton-electron transfer (CPET). In addition, an intrinsic reaction coordinate analysis revealed that the two pathways were achieved by different types of CPET. Furthermore, an intrinsic bond orbital analysis clearly indicated that, in the Cu-ONO pathway, the chemical events involved proceeded concertedly yet asynchronously.
文献中有大量关于铜配合物用于亚硝酸盐(NO)还原的报道。然而,质子和电子如何到达以及一氧化氮(NO)如何释放的细节仍不清楚。亚硝酸盐配位模式对反应活性的影响也存在争议。昆杜及其同事报道了一种铜(II)配合物对亚硝酸盐的还原反应[《美国化学会志》2020年,142卷,1726 - 1730页]。在他们的报道中,铜(II)配合物使用一种酚衍生物作为还原剂还原亚硝酸盐,生成NO、一种羟基铜(II)配合物以及相应的联苯酚。此外,机理研究提出了质子耦合电子转移的参与情况。在此,进行了密度泛函理论计算以确定铜(II)配合物还原亚硝酸盐的机理。对初始配合物进行几何优化后,得到了两种可能的结构:Cu - ONO和Cu - NO。然后考虑了从Cu - ONO或Cu - NO起始的两条可能的反应途径。计算结果表明,Cu - ONO途径在能量上更有利。考虑电子结构的变化时,发现两条途径都涉及协同质子 - 电子转移(CPET)。此外,内禀反应坐标分析表明,两条途径是通过不同类型的CPET实现的。此外,内禀键轨道分析清楚地表明,在Cu - ONO途径中,所涉及的化学事件协同但异步地进行。