Cao Yunjun, Hu Shujun, Yu Min, Yan Shishen, Xu Mingchun
School of Physics, Shandong University, 27 Shanda Nanlu, Jinan, Shandong 250100, P. R. China.
Phys Chem Chem Phys. 2015 Oct 7;17(37):23994-4000. doi: 10.1039/c5cp04013b. Epub 2015 Aug 27.
CO2 adsorption and interaction on rutile TiO2(110) surfaces was studied by UHV-FTIRS combined with theoretical simulations. With increasing CO2 exposure, CO2 adsorbs in succession at the oxygen vacancy (Vo) sites, on the five-coordinated Ti cation (Ti5c) sites and the bridging oxygen (Obr) sites at low temperature. The coupling has occurred between neighboring CO2 adsorbed on Ti5c sites from rather low CO2 coverage (∼0.5 ML), leading the ν3(OCO) asymmetric stretching vibrations to split into two absorption bands in IR spectra. Two kinds of coupled geometries of adjacent CO2 on Ti5c sites are determined by theoretical simulations. For the higher CO2 coverage (∼1.5 ML), the horizontal adsorption configuration along the [11[combining macron]0] azimuth of CO2 adsorbed on Obr sites is identified for the first time using polarization- and azimuth-resolved RAIRS in experiments. The significant deviation of CO2 from the top of Obr sites demonstrates the strong coupling between CO2 adsorbed on Obr and Ti5c sites.
采用超高真空傅里叶变换红外光谱(UHV-FTIRS)结合理论模拟的方法,研究了二氧化碳在金红石型TiO₂(110)表面的吸附及相互作用。随着二氧化碳暴露量的增加,在低温下,二氧化碳依次吸附在氧空位(Vo)位点、五配位钛阳离子(Ti5c)位点和桥氧(Obr)位点上。从相当低的二氧化碳覆盖度(约0.5 ML)开始,吸附在Ti5c位点上的相邻二氧化碳之间就发生了耦合,导致红外光谱中ν3(OCO)不对称伸缩振动分裂为两个吸收带。理论模拟确定了Ti5c位点上相邻二氧化碳的两种耦合几何结构。对于较高的二氧化碳覆盖度(约1.5 ML),首次在实验中利用偏振和方位分辨的反射吸收红外光谱(RAIRS)确定了吸附在Obr位点上的二氧化碳沿[11[macron]0]方位的水平吸附构型。二氧化碳明显偏离Obr位点顶部,表明吸附在Obr和Ti5c位点上的二氧化碳之间存在强耦合。