Yang Chunhua, Liu Cailong, Wang Yuxiu, Zhang He-Na, He Qi-Wen, Tang Dai-Song, Wang Xiao-Chun
Institute of Atomic and Molecular Physics, Jilin University, Changchun, 130012, P. R. China.
School of Physics Science and Information Technology, Liaocheng University, Liaocheng, 252000, P. R. China.
Phys Chem Chem Phys. 2022 Oct 12;24(39):24264-24270. doi: 10.1039/d2cp03223f.
The oxidation of methane to a high-value-added chemical, methanol, is a major challenge in catalysis, requiring high energy input to overcome the CH-H bond activation energy barrier. Based on density functional theory (DFT) calculations, methane oxidation to methanol is catalyzed by hetero-diatomic catalysts (CuZn-NG) with different coordination spheres (CSs). Valence band maximum (VBM), atomic charge and d-band center are selected as analysis methods for the pathway selection and activity of catalysis. The VBM plays a vital role in the catalytic pathway selection, CuZn-NG catalyzes the direct conversion of methane into methanol without side reactions. Alarmingly, the most important reaction step, CH-H bond activation, is a spontaneously exothermic reaction (releasing 0.06 eV) with CuZn-NG as the catalyst, in contrast to most other endothermic reactions in the same activation. By analyzing the atomic charge of the Cu center and O atom, the special electronic phenomenon for this important step is summarized as the "bow-release effect". The CS affects the electronic properties of the active center and further affects the methane oxidation activity. This work provides a useful guide to understand the catalytic selectivity and activity of hetero-diatomic catalysts.
将甲烷氧化为高附加值化学品甲醇是催化领域的一项重大挑战,需要高能量输入来克服CH-H键的活化能垒。基于密度泛函理论(DFT)计算,甲烷氧化为甲醇是由具有不同配位球(CSs)的异双原子催化剂(CuZn-NG)催化的。选择价带最大值(VBM)、原子电荷和d带中心作为催化途径选择和活性的分析方法。VBM在催化途径选择中起着至关重要的作用,CuZn-NG催化甲烷直接转化为甲醇且无副反应。令人担忧的是,最重要的反应步骤CH-H键活化,以CuZn-NG作为催化剂时是自发放热反应(释放0.06 eV),这与同一活化过程中的大多数其他吸热反应形成对比。通过分析Cu中心和O原子的原子电荷,将这一重要步骤的特殊电子现象总结为“弓-释放效应”。CS影响活性中心的电子性质,进而影响甲烷氧化活性。这项工作为理解异双原子催化剂的催化选择性和活性提供了有用的指导。