论文标题

远程表面辅助分子 - 分子杂交

Long-Range Surface-Assisted Molecule-Molecule Hybridization

论文作者

Castelli, Marina, Hellerstedt, Jack, Krull, Cornelius, Gicev, Spiro, Hollenberg, Lloyd C. L., Usman, Muhammad, Schiffrin, Agustin

论文摘要

金属化的邻苯烷(PC)是健壮且多功能的分子复合物,其性能可以通过更改其官能团和中央金属原子来调节。镁PC(MGPC)的电子结构在结构和电子上与叶绿素在AG(100)表面上吸附的电子结构通过低温扫描隧道显微镜(STM)和光谱镜(STS),非接触力原子力显微镜显微镜(NCAFM)和密度函数(dft)研究。单个,孤立的MGPC表现出平坦的四倍旋转对称形态,具有双重变性的,部分人群(由于表面到分子电子的转移)最低的无置分子轨道(Lumos)。相反,与邻近分子相邻分子的MGPC经历了Lumos退化的提升,其局部局部密度的局部密度降低了两倍的旋转对称性,表明远距离有吸引力的分子间相互作用。后者被分配到表面介导的两步电子杂交过程中。首先,Lumos与AG(100)传导电子相互作用,形成具有增强空间延伸的混合分子表面轨道。然后,这些离域分子表面状态与邻近分子进一步杂交。这项工作强调了如何通过表面介导的分子间杂交(超过3 nm)的表面介导的分子间杂交(超过3 nm)对分子吸附物的电子结构(包括轨道变性和对称性)进行显着改变,对分子基于分子的固体固体技术具有重要意义。

Metalated phthalocyanines (Pc's) are robust and versatile molecular complexes, whose properties can be tuned by changing their functional groups and central metal atom. The electronic structure of magnesium Pc (MgPc) - structurally and electronically similar to chlorophyll - adsorbed on the Ag(100) surface is investigated by low-temperature scanning tunneling microscopy (STM) and spectroscopy (STS), non-contact atomic force microscopy (ncAFM) and density functional theory (DFT). Single, isolated MgPc's exhibit a flat, four-fold rotationally symmetric morphology, with doubly degenerate, partially populated (due to surface-to-molecule electron transfer) lowest unoccupied molecular orbitals (LUMOs). In contrast, MgPc's with neighbouring molecules in proximity undergo a lift of LUMOs degeneracy, with a near-Fermi local density of states with reduced two-fold rotational symmetry, indicative of a long-range attractive intermolecular interaction. The latter is assigned to a surface-mediated two-step electronic hybridization process. First, LUMOs interact with Ag(100) conduction electrons, forming hybrid molecule-surface orbitals with enhanced spatial extension. Then, these delocalized molecule-surface states further hybridize with those of neighbouring molecules. This work highlights how the electronic structure of molecular adsorbates - including orbital degeneracies and symmetries - can be significantly altered via surface-mediated intermolecular hybridization, over extended distances (beyond 3 nm), having important implications for prospects of molecule-based solid-state technologies.

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