Highly Conductive [3 x n] Gold-Ion Clusters Enclosed within Self-Assembled Cages

Highly Conductive [3 x n] Gold-Ion Clusters Enclosed within Self-Assembled Cages
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DOI:
10.1002/anie.201301665
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发表时间:
2013-01-01
影响因子:
16.6
通讯作者:
Watanabe, Satoshi
Watanabe, Satoshi
中科院分区:
化学1区
文献类型:
--
作者:
Kiguchi, Manabu;Inatomi, Junichi;Watanabe, Satoshi

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There is an increasing interest in the electron conductivity of metal-atom wires at the single-molecule level because of their quantized electric properties applicable to conducting wires in ultra-small devices.[1–3] In contrast, the single-molecular conductivity of metal-ion wires has never been studied and whether the metal-ion wires are conductive or insulating has been a matter of debate,[4–6] because creating metal-ion arrays with a fixed cross section and length between nanogap electrodes is nontrivial. In recent years, several efficient methods have been developed for preparing multinuclear complexes with ordered metal-ion arrays. Among them,[3 n] gold-ion clusters, enclosed in self-assembled cages 1 (Figure 1), are particularly interesting because the stacking number n is uniquely determined by the length of the pillar ligand (4). In expectation of efficient electron transport through metal-ion arrays, single-molecular electron conductivity through [3 n] stacks of gold-ion clusters (2) n (n= 1, 2, or 3) was measured. The cages, 1, which keep the metal ions highly ordered in a [3 n] manner within the cavity, are excellent frameworks for accommodating π-stacked molecules and evaluating their electron-transport properties.[7, 8] We show that the metal-ion arrays are highly conductive, the electron transport being comparable to that through metalatom wires and the absolute conductance value being much larger than that of metal-linked organic wires. We confirmed by ab initio transport calculations that the [3 n] AuI ion clusters would be suitable for high conductance with a negligibly small decay over longer transport distances. We calculated the conductance of the corresponding model arrays, 3·(2a) n· 3 (n= 1–4)(See the Supporting Information). Figure 2 shows the calculated conductance values, together