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Computational Approach to Understanding the Electrocatalytic Reaction Mechanism for the Process of Electrochemical Oxidation of Nitrite at a Ni–Co-Based Heterometallo-Supramolecular Polymer

机译:镍氢镍杂菌 - 超分子聚合物在亚硝酸盐电化学氧化过程中理解电化学反应机理的计算方法

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Here, we report a semiempirical quantum chemistry computational approach to understanding the electrocatalytic reaction mechanism (ERM) of a metallic supramolecular polymer (SMP) with nitrite through UV/vis spectral simulations of SMP with different metal oxidation states before and after interactions with nitrite. In one of our recent works, by analyzing the electrochemical experimental data, we showed that computational cyclic voltammetry simulation (CCVS) can be used to predict the possible ERM of heterometallo-SMP (HMSMP) during electrochemical oxidation of nitrite ( Islam, T. ACS Appl. Polym. Mater. 2020, 2 (2), 273?284). However, CCVS cannot predict how the ERM happens at the molecular level. Thus, in this work, we simulated the interactions between the repeating unit (RU) of the HMSMP polyNiCo and nitrite to understand how the oxidation process took place at the molecular level. The RU for studying the ERM was confirmed through comparing the simulated UV/vis and IR spectra with the experimental spectra. Then, the simulations between the RU of the polyNiCo and various species of nitrite were done for gaining insights into the ERM. The simulations revealed that the first electron transfer (ET) occurred through coordination of NO_(2)~(–) with either of the metal centers during the two-electron-transfer oxidation of nitrite, while the second ET followed a ligand–ligand charge transfer (LLCT) and metal–ligand charge transfer (MLCT) pathway between the NO_(2) species and the RU. This ET pathway has been proposed by analyzing the transition states (TSs), simulated UV/vis spectra, energy of the optimized systems, and highest occupied molecular orbital–lowest occupied molecular orbital (HOMO–LUMO) interactions from the simulations between the RU and nitrite species.
机译:在这里,我们报告了一种半透明量子化学计算方法,以了解金属超分子聚合物(SMP)的电催化反应机理(ERM)通过与亚硝酸盐相互作用之前和之后具有不同金属氧化态的SMP的UV / Vis光谱仿真。在我们最近的作品中,通过分析电化学实验数据,我们表明计算循环伏安法模拟(CCV)可用于预测亚硝酸盐电化学氧化期间Heteromaro-SMP(HMSMP)的可能的ERM(伊斯兰教,T. < i> ACS应用。Polym。Mater。2020,2(2),273?284)。然而,CCV不能预测ERM在分子水平上发生的情况。因此,在这项工作中,我们模拟了HMSMP多诺诺和亚硝酸盐的重复单元(Ru)之间的相互作用,以了解氧化过程如何在分子水平上进行。通过将模拟的UV / Vis和IR光谱与实验光谱进行比较,确认用于研究ERM的RU。然后,进行多射诺和各种亚硝酸盐之间的模拟,以便在em中获得洞察力。模拟显示,在亚硝酸盐的双电子转移氧化过程中,通过配合NO_(2)〜( - )的第一电子转移(ET)发生第一电子转移(ET),而第二个ET跟随配体 - 配体电荷在NO_(2)种和RU之间的转移(L1CT)和金属 - 配体电荷转移(MLCT)途径。通过分析过渡态(TSS),模拟UV / Vis光谱,优化系统的能量,以及从Ru和Ru之间的模拟中的最高占用的分子轨道最低占用的分子(Homo-Lumo)相互作用的最高占用的分子轨道最低占用的分子轨道(Homo-Lumo)相互作用。亚硝酸盐物种。

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