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Molecular metal wires and molecular switches

机译:分子金属线和分子开关

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Owing to their fascinating bonding nature, the metal-metal (M-M) multiple bonds in dinuclear metal complexes have been an interesting and vital research topic. During the past decade, our seminal and systematic approaches on the all-syn oligo-(/spl alpha/-pyridyl)amido ligands coordinated metal ions have successfully opened up a new chapter, extending this territory from dinuclear to linear oligonuclear metal complexes. Their unique features in structures and bonding characterization have been thoroughly investigated, which, according to the M-M bonding strength, can be classified into two categories, namely the oligonickel (II) complexes lacking an M-M bond and the oligochromium (II) complexes with a strong M-M bonding formation. Depending on the specificity and number of metal ions, structures and magnetic behaviors of the corresponding metal complexes are systematically analyzed. Their potential application as a molecular metal wire is conveyed on the basis of the band structures calculated from hypothetical one-dimensional metal strings. Moreover, self-assembled monolayers of n-alkanethiols are employed as a two-dimensional matrix to isolate the metal string complexes, of which the scanning tunneling microscopy (STM) image exhibits remarkable protrusion characteristics. For tricobalt and trichromium complexes, the topographic STM images reveal that the protruding features are, respectively, 0.3 nm and 0.6 nm higher than that of the trinickel complexes. The trend of increasing conductivity correlates well with their associated bond orders, and is also in consistence with qualitative EHMO approaches. The ET efficiency of metal strings is altered significantly upon oxidation. It demonstrates that their ET properties can be manipulated and shed light on the potential applications such as molecular switches.
机译:由于其迷人的键合性质,双核金属络​​合物中的金属-金属(M-M)多重键一直是一个有趣而重要的研究课题。在过去的十年中,我们对全合成寡聚-(/ splα/-吡啶基)酰胺基配位金属离子的开创性和系统化方法成功地开辟了新的篇章,将这一领域从双核扩展为线性寡核金属络合物。对它们在结构和键合特征方面的独特特征进行了彻底研究,根据MM键合强度,可以将其分为两类,即缺乏MM键的低镍(II)配合物和具有较强键合的低铬(II)配合物。 MM粘接形成。根据金属离子的特异性和数量,系统分析了相应金属配合物的结构和磁行为。根据从假设的一维金属弦计算出的能带结构来传达其作为分子金属线的潜在应用。此外,正链烷硫醇的自组装单分子层被用作二维矩阵来分离金属串络合物,其扫描隧道显微镜(STM)图像表现出显着的突出特性。对于三钴和三铬配合物,STM形貌图显示突出特征分别比三镍配合物高0.3 nm和0.6 nm。电导率增加的趋势与其相关的键序密切相关,并且也与定性的EHMO方法一致。金属串的ET效率在氧化后会发生显着变化。它证明了它们的ET特性可以被操纵,并为诸如分子开关之类的潜在应用提供了启示。

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