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首页> 外文期刊>The Journal of Chemical Physics >Characterization of individual molecular adsorption geometries by atomic force microscopy: Cu-TCPP on rutile TiO2 (110)
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Characterization of individual molecular adsorption geometries by atomic force microscopy: Cu-TCPP on rutile TiO2 (110)

机译:通过原子力显微镜表征单个分子的吸附几何结构:金红石型TiO2上的Cu-TCPP(110)

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Functionalized materials consisting of inorganic substrates with organic adsorbates play an increasing role in emerging technologies like molecular electronics or hybrid photovoltaics. For such applications, the adsorption geometry of the molecules under operating conditions, e.g., ambient temperature, is crucial because it influences the electronic properties of the interface, which in turn determine the device performance. So far detailed experimental characterization of adsorbates at room temperature has mainly been done using a combination of complementary methods like photoelectron spectroscopy together with scanning tunneling microscopy. However, this approach is limited to ensembles of adsorbates. In this paper, we show that the characterization of individual molecules at room temperature, comprising the determination of the adsorption configuration and the electrostatic interaction with the surface, can be achieved experimentally by atomic force microscopy (AFM) and Kelvin probe force microscopy (KPFM). We demonstrate this by identifying two different adsorption configurations of isolated copper(II) meso-tetra (4-carboxyphenyl) porphyrin (Cu-TCPP) on rutile TiO2 (110) in ultra-high vacuum. The local contact potential difference measured by KPFM indicates an interfacial dipole due to electron transfer from the Cu-TCPP to the TiO2. The experimental results are verified by state-of-the-art first principles calculations. We note that the improvement of the AFM resolution, achieved in this work, is crucial for such accurate calculations. Therefore, high resolution AFM at room temperature is promising for significantly promoting the understanding of molecular adsorption. (C) 2015 AIP Publishing LLC.
机译:由无机底物与有机吸附物组成的功能化材料在新兴技术(例如分子电子学或混合光伏技术)中发挥着越来越重要的作用。对于这样的应用,在操作条件下,例如环境温度下,分子的吸附几何形状至关重要,因为它影响界面的电子性质,这反过来又决定了器件的性能。到目前为止,室温下吸附物的详细实验表征主要是通过使用互补方法(如光电子能谱法)和扫描隧道显微镜来完成的。但是,这种方法仅限于吸附物的集合体。在本文中,我们表明,通过原子力显微镜(AFM)和开尔文探针力显微镜(KPFM),可以通过实验实现室温下单个分子的表征,包括确定吸附构型和与表面的静电相互作用。 。我们通过在超高真空下确定金红石型TiO2(110)上分离的铜(II)介孔四(4-羧基苯基)卟啉(Cu-TCPP)的两种不同吸附构型来证明这一点。通过KPFM测量的局部接触电势差表示由于电子从Cu-TCPP传递到TiO2而产生的界面偶极子。实验结果通过最新的第一原理计算得到验证。我们注意到,这项工作中实现的AFM分辨率的提高对于这种精确的计算至关重要。因此,在室温下高分辨率的AFM有望显着促进对分子吸附的理解。 (C)2015 AIP Publishing LLC。

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