论文标题
分子内偶极子的分辨率和单个分子对金属表面的效果
Resolution of intramolecular dipoles and push-back effect of individual molecules on a metal surface
论文作者
论文摘要
由供体和受体部分组成的分子可以表现出较大的固有偶极矩。沉积在金属表面上后,可以有效筛选偶极子,并且由于与底物电子状态杂交而导致电荷分布改变。在这里,我们在AU(111)表面上沉积了二氨基二苯乙烯醌分子,在气相中表现出很大的偶极矩。通过扫描隧道显微镜和非接触原子力显微镜的组合,我们发现平坦的分子中存在明显的偶极矩。密度功能理论的计算表明,与气相相比,金属底物上的偶极矩甚至增加了。我们还表明,相对于裸金属,整个分子岛上的局部接触电势减少了几十MEV。我们通过吸附的分子引起的电荷密度重新分布来解释这一点,该分子限制了界面处的底物波函数。我们的本地测量值直接证明了这种所谓的推回或缓冲效应,以单个分子的规模。
Molecules consisting of a donor and an acceptor moiety can exhibit large intrinsic dipole moments. Upon deposition on a metal surface, the dipole may be effectively screened and the charge distribution altered due to hybridization with substrate electronic states. Here, we deposit Ethyl-Diaminodicyanoquinone molecules, which exhibit a large dipole moment in gas phase, on a Au(111) surface. Employing a combination of scanning tunneling microscopy and non-contact atomic force microscopy, we find that a significant dipole moment persists in the flat-lying molecules. Density-functional theory calculations reveal that the dipole moment is even increased on the metal substrate as compared to the gas phase. We also show that the local contact potential across the molecular islands is decreased by several tens of meV with respect to the bare metal. We explain this by the induced charge-density redistribution due to the adsorbed molecules, which confine the substrate's wavefunction at the interface. Our local measurements provide direct evidence of this so-called push-back or cushion effect at the scale of individual molecules.