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An atom-scale analysis of electron transfer from individual sodium atoms to the TiO_2(110) substrate by Kelvin probe force microscope

机译:用开尔文探针力显微镜对电子从单个钠原子转移到TiO_2(110)衬底的原子级分析

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Alkali metals are often added to heterogeneous catalysts as a promoter. The electron transfer from the alkali atoms to the catalysts is received to enhance the dissociative adsorption of reactants. Atom-scale mapping of the work function should reveal how alkali additives promote catalytic activities. We observed the sodium-deposited TiO_2(110)-(1 X 1) surface by Kelvin probe force microscope (KPFM) -The sodium atoms were observed as protrusions on the titanium-atom rows of the surface in topographical images, and significantly affected the work function map simultaneously obtained. Extra sample bias voltage of-200 mV was required on the adatoms to cancel the contact potential difference between the tip and sample. The observed decrease of the local work function on the adatoms was attributed to permanent electric dipole moment created by the electron transfer from the adatoms to the surface. Perturbed work function extended to nanometer vicinity away from the adatoms.
机译:碱金属通常作为促进剂添加到非均相催化剂中。接收从碱原子到催化剂的电子转移,以增强反应物的离解吸附。功函数的原子标度图应揭示碱添加剂如何促进催化活性。我们用开尔文探针力显微镜(KPFM)观察了钠沉积的TiO_2(110)-(1 X 1)表面-在形貌图中观察到钠原子作为表面钛原子行上的突起,并显着影响了同时获得工作功能图。吸附原子上需要额外的-200 mV的样品偏置电压,以消除尖端与样品之间的接触电势差。观察到的在原子上的局部功函数的降低归因于由电子从原子转移到表面所产生的永久电偶极矩。摄动功函数扩展到远离原子的纳米附近。

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