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Calculation of two-dimensional potential energy surfaces of CO on a rutile(110) surface: Ground and excited states

机译:金红石(110)表面上CO的二维势能面的计算:基态和激发态

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Being one of the most important catalytically active metal oxide surfaces, the aim of this study was the description of the laser-induced photodesorption of the CO adsorbate from a TiO2 (110) surface. As a first step, this paper presents two-dimensional potential energy surfaces of a CO molecule on a rutile TiO2 (110) surface. Focussing on the desorption mechanism taking place in this adsorbate-substrate system, the quantum chemical and quantum dynamical calculations regarding the desorption coordinate Z and the polar angle θ allowed a first insight into the mechanistic processes in the CO-TiO2 (110) system which are relevant for laser-induced photodesorption. For the electronic ground state X~1A1 the adsorption minimum was found for the polar angle θ = 0°, which corresponds to a linear coordination of the CO adsorbate with the carbon atom down to the substrate surface. This is in contrast to the electronically excited state A~3B2, where the adsorption minimum was found for the polar angle θ = 180°, which describes a linear coordination with the oxygen atom of the CO molecule on top of the rutile TiO2(110) surface. Moreover, this paper shows exemplary quantum dynamical calculations which simulate the laser-induced photodesorption as a first step to understand the desorption process in detail. Hence, higher dimensional calculations regarding more than 2 degrees of freedom of the CO molecule on the substrate surface are needed to get a complete description of this complex adsorbate-substrate system.
机译:作为最重要的催化活性金属氧化物表面之一,本研究的目的是描述激光诱导的TiO 2(110)表面的CO吸附物的光解吸。第一步,本文介绍了金红石型TiO2(110)表面上CO分子的二维势能表面。着眼于该吸附物-基质系统中发生的解吸机理,有关解吸坐标Z和极角θ的量子化学和量子动力学计算使我们首次了解了CO-TiO2(110)系统中的机理过程。与激光诱导的光解吸有关。对于电子基态X〜1A1,发现极角θ= 0°时的最小吸附量,这对应于CO吸附物与碳原子一直到基体表面的线性配合。这与电子激发态A〜3B2相反,​​在电子激发态A〜3B2中,发现极角θ= 180°的吸附最小值,这表明与金红石TiO2顶部的CO分子的氧原子呈线性配位关系(110)表面。此外,本文显示了示例性的量子动力学计算,该模拟是模拟激光诱导的光解吸的第一步,以详细了解解吸过程。因此,需要对基材表面上的CO分子的2个以上自由度进行更高尺寸的计算,以完整地描述此复杂的吸附物-基材系统。

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