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Theoretical investigation of CO interaction with copper sites in zeolites: Periodic DFT and hybrid quantum mechanical/interatomic potential function study

机译:分子筛中CO与沸石中铜原子相互作用的理论研究:周期性DFT和混合量子力学/原子间势函数研究

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Periodic DFT and combined quantum mechanics/interatomic potential function (QM-pot) models were used to describe the interaction of CO with the Cu+ sites in FER. The CO stretching frequencies were calculated using omega(CO)(CCSD(T))/r(CO)(DFT) scaling method relating frequencies determined using a high-level quantum-chemical (coupled clusters) method for simple model carbonyls to CO bond lengths calculated using periodic DFT and QM-pot methods for the Cu+-zeolite system. Both periodic DFT and QM-pot models together with omega(CO)/r(CO) scaling describe the CO stretching dynamics with the "near spectroscopic accuracy", giving v(CO) = 2156 cm(-1) in excellent agreement with experimental data. Calculations for various Cu+ sites in FER show that both types of Cu+ sites in FER (channel-wall sites and intersection sites) have the same CO stretching frequencies. Thus, the CO stretching frequencies are not site-specific in the CO/Cu+/FER system. The convergence of the results with respect to the model size was analyzed. When the same exchange-correlation functional is used the adsorption energies from periodic DFT and QNI-pot are in good agreement (about 2 kcal/mol difference) but substantially larger than those of the experiment. The adsorption energy calculated with the B3LYP functional agrees with available experimental data. The overestimation of the adsorption energy in DFT calculations (periodic or QM-pot) is related to a red-shift of the CO stretching mode, both result from an underestimation of the HOMO(5 sigma)-LUMO(2 pi*) gap of CO and the consequent overestimation of the Cu+(d)-CO(2 pi*) back-donation. For the adsorption energy, this can be overcome by the use of hybrid B3LYP exchange-correlation functional. For the frequency calculations, the DFT problem can be overcome by the use of the omega(CO)(CCSD(T))/r(CO)(DFT) correlation.
机译:周期性DFT和组合的量子力学/原子间势函数(QM-pot)模型用于描述FER中CO与Cu +位点的相互作用。使用omega(CO)(CCSD(T))/ r(CO)(DFT)缩放方法计算CO拉伸频率,该方法将使用简单的羰基简单模型与CO键的高级量子化学(耦合簇)方法确定的频率相关使用周期性DFT和QM-pot方法计算的Cu +沸石体系的长度。周期性DFT和QM-pot模型与omega(CO)/ r(CO)缩放比例一起描述了具有“近光谱精度”的CO拉伸动力学,使v(CO)= 2156 cm(-1)与实验非常吻合数据。对FER中各种Cu +部位的计算表明,FER中的两种Cu +部位(通道壁部位和交叉部位)具有相同的CO拉伸频率。因此,CO拉伸频率在CO / Cu + / FER系统中不是特定位置的。分析了结果相对于模型大小的收敛性。当使用相同的交换相关函数时,周期性DFT和QNI-pot的吸附能非常一致(相差约2 kcal / mol),但比实验的能量大得多。用B3LYP函数计算的吸附能与可用的实验数据一致。 DFT计算(周期或QM-pot)中吸附能的高估与CO拉伸模式的红移有关,这两者都是由于HOMO(5 sigma)-LUMO(2 pi *)间隙的低估导致的。一氧化碳和随之而来的Cu +(d)-CO(2 pi *)回赠的高估。对于吸附能,可以通过使用杂化B3LYP交换相关功能来克服。对于频率计算,可以通过使用ω(CO)(CCSD(T))/ r(CO)(DFT)相关来克服DFT问题。

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