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Exceptionally Stiff Two-Dimensional Molecular Crystal by Substrate-Confinement

机译:基板约束的超硬二维分子晶体

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We demonstrated an approach to effectively apply in-plane pressures to molecular layers by utilizing the substrate confinement effect. The compressed crystal structure and mechanical behaviors of carbon monoxide (CO) monolayer subjected to the confinement of Cu(100) substrate were jointly investigated by low temperature scanning tunneling microscopy experiments and first-principles density functional theory calculations. By increasing molecular coverage, an exceptionally large Youngs modulus of 33 GPa was derived for the constrained CO monolayer film. This extreme in-plane pressure leads to site-specific tilting geometries, polymeric-like electronic states, and vibrational behaviors of CO molecules in the compressed phases. These results provide an extended understanding of the physical and chemical properties of intermolecular interactions in this fundamental system.
机译:我们展示了一种通过利用底物限制效应有效地将平面内压力应用于分子层的方法。通过低温扫描隧道显微镜实验和第一性原理密度泛函理论计算,共同研究了受限于Cu(100)衬底的一氧化碳(CO)单层的压缩晶体结构和力学行为。通过增加分子覆盖率,可得出约束性CO单层膜的极高的33 GPa的杨氏模量。这种极高的平面内压力会导致特定位置的倾斜几何形状,类似聚合物的电子状态以及压缩相中CO分子的振动行为。这些结果提供了对该基本系统中分子间相互作用的物理和化学性质的扩展理解。

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