首页> 外文期刊>Japanese journal of applied physics >How Contacting Electrodes Affect Single π-Conjugated Molecular Electronic States: Local Density of States of Phthalocyanine Nanomolecules on MgO(001), Cu(111), Ag(001), Fe(001), and Mn(001)
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How Contacting Electrodes Affect Single π-Conjugated Molecular Electronic States: Local Density of States of Phthalocyanine Nanomolecules on MgO(001), Cu(111), Ag(001), Fe(001), and Mn(001)

机译:接触电极如何影响单个π共轭分子电子状态:酞菁纳米分子在MgO(001),Cu(111),Ag(001),Fe(001)和Mn(001)上的局部态密度

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摘要

Single molecules have attracted much interest as new materials for future spin electronic devices; however, many open questions still remain. One of them is how the electronic local density of states (LDOS) of single molecules is affected when they are in contact with electrodes. We show a systematic study of the LDOS of π-conjugated phthalocyanine (H_2Pc) nanomolecules adsorbed on various electrodes, namely, (1) MgO(001) thin films grown on Ag(001), (2) noble metals of Cu(111) and Ag(001), and (3) 3d magnetic metals of Fe(001) and Mn(001), adupting scanning tunneling spectroscopy techniques with an ultrahigh-vacuum scanning tunneling microscopy setup at room temperature. Since MgO thin films cut the electronic coupling from the substrate Ag(001), we could observe H_2Pc molecular states at -1.5 and +1.0eV. H_2Pc molecules on the noble metal substrates form a pattern with a square unit cell of about 1.5 × 1.5nm~2 and have similar LDOS peaks near the Fermi energy. Strong hybridizations between the substrate 3d spin-polarized states and the molecular π orbitals produce new molecular states of H_2Pc molecules adsorbed on Fe(001) and Mn(001) near the energy positions of the Fe(001) minority spin state and the Mn(001) majority spin state, respectively.
机译:作为未来自旋电子设备的新材料,单分子引起了极大的兴趣。但是,仍然存在许多悬而未决的问题。其中之一是单分子与电极接触时如何影响其电子局部态密度(LDOS)。我们显示了吸附在各种电极上的π共轭酞菁(H_2Pc)纳米分子的LDOS的系统研究,即(1)在Ag(001)上生长的MgO(001)薄膜,(2)Cu(111)的贵金属以及Ag(001)和(3)Fe(001)和Mn(001)的3d磁性金属,在室温下采用超高真空扫描隧道显微镜技术建立了扫描隧道光谱技术。由于MgO薄膜切断了与衬底Ag(001)的电子耦合,因此我们可以在-1.5和+ 1.0eV处观察到H_2Pc分子态。贵金属衬底上的H_2Pc分子形成具有约1.5×1.5nm〜2的方形晶胞的图案,并且在费米能量附近具有相似的LDOS峰。衬底3d自旋极化态与分子π轨道之间的强杂交产生了Fe(001)少数自旋态和Mn(001)的能量位置附近吸附在Fe(001)和Mn(001)上的H_2Pc分子的新分子态。 001)分别处于多数自旋状态。

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  • 来源
    《Japanese journal of applied physics》 |2013年第11issue1期|110115.1-110115.6|共6页
  • 作者单位

    Graduate School of Advanced Integration Science, Chiba University, Chiba 263-8522, Japan;

    Graduate School of Advanced Integration Science, Chiba University, Chiba 263-8522, Japan;

    Graduate School of Advanced Integration Science, Chiba University, Chiba 263-8522, Japan;

    Graduate School of Advanced Integration Science, Chiba University, Chiba 263-8522, Japan;

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