论文标题

了解MOF-74的特别小和各向异性热膨胀的起源

Understanding the origin of the particularly small and anisotropic thermal expansion of MOF-74

论文作者

Kamencek, Tomas, Schrode, Benedikt, Resel, Roland, Ricco, Raffaele, Zojer, Egbert

论文摘要

金属有机框架通常显示出较大的正或负热膨胀系数。 MOF-74,用于许多应用程序设想的材料不会显示这种行为。对于该系统,依赖温度的X射线衍射揭示了垂直于垂直的阴性热膨胀系数,并平行于六角形排列的孔。观察到的趋势是通过将最先进的密度功能理论计算与Grüneisen热膨胀理论相结合的,从而可以将热量扩展追踪到单个声子的贡献中。在宏观水平上,较小的热膨胀系数源自两个方面:补偿效应是由压力和垂直于毛孔垂直的应变之间的较大耦合以及平均值grüneisen张量元件的较小幅度,$ \ \ \langleγ\ rangle $ rangle $,提供有关其材料频繁的信息的信息。为了了解MOF-74中的小平均值grüneisen张量,根据相应的原子运动对单个模式的贡献进行分析。这表明,只有最低频率模式高达〜3 THz的贡献,因此$ \langleγ\ rangle $ $在较高的温度下急剧下降。这些考虑因素揭示了特定声子带的非谐波特性的细节如何确定原型材料(如MOF-74)中热膨胀的幅度和符号。

Metal-organic frameworks often display large positive or negative thermal expansion coefficients. MOF-74, a material envisioned for many applications does not display such a behavior. For this system, temperature-dependent x-ray diffraction reveals particularly small negative thermal expansion coefficients perpendicular and positive ones parallel to the hexagonally arranged pores. The observed trends are explained by combining state-of-the-art density-functional theory calculations with the Grüneisen theory of thermal expansion, which allows tracing back thermal expansion to contributions of individual phonons. On the macroscopic level, the small thermal expansion coefficients arise from two aspects: compensation effects caused by the large coupling between stress and strain perpendicular to the pores and the small magnitudes of the mean Grüneisen tensor elements, $\langleγ\rangle$, which provide information on how strains in the material influence its phonon frequencies. To understand the small mean Grüneisen tensor in MOF-74, the individual mode contributions are analyzed based on the corresponding atomic motions. This reveals that only the lowest frequency modes up to ~3 THz provide non-negligible contributions, such that $\langleγ\rangle$ drops sharply at higher temperatures. These considerations reveal how the details of the anharmonic properties of specific phonon bands determine the magnitude and sign of thermal expansion in a prototypical material like MOF-74.

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