Scherb Sebastian, Hinaut Antoine, Pawlak Rémy, Vilhena J G, Liu Yi, Freund Sara, Liu Zhao, Feng Xinliang, Müllen Klaus, Glatzel Thilo, Narita Akimitsu, Meyer Ernst
1Department of Physics, University of Basel, Klingelbergstrasse 82, 4056 Basel, Switzerland.
Max Plank Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.
Commun Mater. 2020;1(1):8. doi: 10.1038/s43246-020-0009-2. Epub 2020 Feb 17.
Thermal expansion, the response in shape, area or volume of a solid with heat, is usually large in molecular materials compared to their inorganic counterparts. Resulting from the intrinsic molecule flexibility, conformational changes or variable intermolecular interactions, the exact interplay between these mechanisms is however poorly understood down to the molecular level. Here, we investigate the structural variations of a two-dimensional supramolecular network on Au(111) consisting of shape persistent polyphenylene molecules equipped with peripheral dodecyl chains. By comparing high-resolution scanning probe microscopy and molecular dynamics simulations obtained at 5 and 300 K, we determine the thermal expansion coefficient of the assembly of 980 ± 110 × 10 K, twice larger than other molecular systems hitherto reported in the literature, and two orders of magnitude larger than conventional materials. This giant positive expansion originates from the increased mobility of the dodecyl chains with temperature that determine the intermolecular interactions and the network spacing.
热膨胀是固体在受热时形状、面积或体积的变化,与无机材料相比,分子材料中的热膨胀通常较大。由于分子固有的柔韧性、构象变化或分子间相互作用的变化,然而,在分子水平上,这些机制之间的确切相互作用还知之甚少。在这里,我们研究了由带有外围十二烷基链的形状持久的聚苯撑分子组成的二维超分子网络在Au(111)上的结构变化。通过比较在5K和300K下获得的高分辨率扫描探针显微镜和分子动力学模拟结果,我们确定了该组装体的热膨胀系数为980±110×10⁻⁶K⁻¹,比迄今文献报道的其他分子体系大两倍,比传统材料大两个数量级。这种巨大的正膨胀源于十二烷基链随温度升高而增加的流动性,这种流动性决定了分子间相互作用和网络间距。