论文标题
在金属有机单层中的自组织的kagome-lattice
Self-organized Kagome-lattice in a metal-organic monolayer
论文作者
论文摘要
我们报告了金属有机协调网络的成功地面合成,并具有金属中心密集的kagome晶格。在MN中心的情况下,Ab-Initio计算表明,AG上的吸附单层具有严格的二维(2D)铁磁kagome金属的所有特征。在AG(111)基板上共同沉积四氢烷酮(THQ)和金属原子(M = CU或MN),以构建有序的2D晶格M $ _3 $ _3 $ C $ _6 $ o $ o $ _6 $。通过扫描隧道显微镜(STM),低能电子衍射(LEED)和X射线光电子光谱(XPS)来研究表面,以优化诸如通量和温度之类的生长条件。原子,电子和磁性结构的细节通过密度功能理论(DFT)计算阐明。 XPS和DFT显示了Cu $^+$充电状态,而Cu-Organic网络没有局部磁矩。对于MN-有机网络,我们找到电荷状态Mn $^{2+} $和本地旋转s = 5/2。充电转移稳定了Cu $^+$和Mn $^{2+} $电荷状态。我们发现M $ _3 $ C $ _6 $ o $ _6 $ lattice的两个不同的修改。忽略小的自旋轨道耦合的DFT计算显示了一个零点,即在布里渊区的K点上与线性电子分散的频带交叉。如果没有充电转移,则该狄拉克点在费米级别,但如果cu $ _3 $ _3 $ c $ _6 $ _6 $ o $ $ _6 $在Ag(111)表面上被确认,则会下降100 meV。我们预测,隔离的M $ _3 $ c $ _6 $ o $ _6 $单层的磁性耦合为短距离和反铁磁性,导致Kagome晶格的高度挫败感,并且倾向于旋转液体基态的趋势。如果引入了底物的孔转移,则引入了铁磁订购,使M $ _3 $ c $ _6 $ o $ _6 $成为量子异常效应的有趣候选者。
We report on the successful on-surface synthesis of metal-organic covalent coordination networks with a dense Kagome lattice of metallic centers. In the case of Mn centers ab-initio calculations show that the adsorbed monolayer on Ag(111) has all the characteristic features of a strictly two-dimensional (2D) ferromagnetic Kagome metal. Tetrahydroxyquinone (THQ) and metal atoms (M=Cu or Mn) are co-deposited on the Ag(111) substrate to build well-ordered 2D lattices M$_3$C$_6$O$_6$. The surface is studied by scanning tunneling microscopy (STM), low energy electron diffraction (LEED) and X-ray photoelectron spectroscopy (XPS) to optimize the growth conditions like fluxes and temperatures. The details of the atomic, electronic and magnetic structures are clarified by density functional theory (DFT) calculations. XPS and DFT reveal a Cu$^+$ charge state and no local magnetic moments for the Cu-organic network. For the Mn-organic network, we find the charge state Mn$^{2+}$ and a local spin S=5/2. Charge transfer stabilizes the Cu$^+$ and Mn$^{2+}$ charge states. We find two different modifications of the M$_3$C$_6$O$_6$ lattice. DFT calculations which neglect the small spin-orbit coupling show a Dirac point, i.e. a band crossing with linear electron dispersion at the K-point of the Brillouin zone. This Dirac point is at the Fermi level if there is no charge transfer but drops by 100 meV if electron doping of Cu$_3$C$_6$O$_6$ on Ag(111) surface is acknowledged. We predict the magnetic couplings of an isolated M$_3$C$_6$O$_6$ monolayer to be short range and antiferromagnetic leading to high frustration at the Kagome lattice and a tendency towards a spin-liquid ground state. In the case of hole transfer from the substrates ferromagnetic ordering is introduced, making M$_3$C$_6$O$_6$ an interesting candidate for the quantum anomalous Hall effect.