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在室温下在绝缘体表面创建金属络合分子的规则阵列。

Creating a regular array of metal-complexing molecules on an insulator surface at room temperature.

作者信息

Aeschlimann Simon, Bauer Sebastian V, Vogtland Maximilian, Stadtmüller Benjamin, Aeschlimann Martin, Floris Andrea, Bechstein Ralf, Kühnle Angelika

机构信息

Institute of Physical Chemistry, Johannes Gutenberg University Mainz, Duesbergweg 10-14, 55099, Mainz, Germany.

Graduate School Materials Science in Mainz, Staudingerweg 9, 55128, Mainz, Germany.

出版信息

Nat Commun. 2020 Dec 21;11(1):6424. doi: 10.1038/s41467-020-20189-x.

Abstract

Controlling self-assembled nanostructures on bulk insulators at room temperature is crucial towards the fabrication of future molecular devices, e.g., in the field of nanoelectronics, catalysis and sensor applications. However, at temperatures realistic for operation anchoring individual molecules on electrically insulating support surfaces remains a big challenge. Here, we present the formation of an ordered array of single anchored molecules, dimolybdenum tetraacetate, on the (10.4) plane of calcite (CaCO). Based on our combined study of atomic force microscopy measurements and density functional theory calculations, we show that the molecules neither diffuse nor rotate at room temperature. The strong anchoring is explained by electrostatic interaction of an ideally size-matched molecule. Especially at high coverage, a hard-sphere repulsion of the molecules and the confinement at the calcite surface drives the molecules to form locally ordered arrays, which is conceptually different from attractive linkers as used in metal-organic frameworks. Our work demonstrates that tailoring the molecule-surface interaction opens up the possibility for anchoring individual metal-complexing molecules into ordered arrays.

摘要

在室温下控制块状绝缘体上的自组装纳米结构对于未来分子器件的制造至关重要,例如在纳米电子学、催化和传感器应用领域。然而,在实际操作温度下,将单个分子锚定在电绝缘支撑表面上仍然是一个巨大的挑战。在这里,我们展示了在方解石(CaCO)的(10.4)平面上形成单锚定分子二钼四乙酸盐的有序阵列。基于我们对原子力显微镜测量和密度泛函理论计算的综合研究,我们表明这些分子在室温下既不扩散也不旋转。这种强锚定作用是由理想尺寸匹配的分子的静电相互作用来解释的。特别是在高覆盖率下,分子的硬球排斥和方解石表面的限制促使分子形成局部有序阵列,这在概念上与金属有机框架中使用的吸引性连接体不同。我们的工作表明,调整分子 - 表面相互作用为将单个金属络合分子锚定到有序阵列中开辟了可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c90/7752910/3a651ce329ac/41467_2020_20189_Fig1_HTML.jpg

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