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Electronic conductivity of alkyne-capped ruthenium nanoparticles

机译:电子电导率alkyne-capped钌纳米粒子

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Ruthenium nanoparticles (2.12 ± 0.72 nm in diameter) were stabilized by the self-assembly of alkyne molecules (from 1-hexyne to 1-hexadecyne) onto the Ru surface by virtue of the formation of Ru-vinylidene interfacial linkages. Infrared measurements depicted three vibrational bands at 2050 cm~(-1), 1980 cm~(-1) and 1950 cm~(-1), which were ascribed to the vibrational stretches of the terminal triple bonds that were bound onto the nanoparticle surface. Thermogravimetric analysis showed that there were about 65 to 96 alkyne ligands per nanoparticle (depending on the ligand chainlength), corresponding to a molecular footprint of 20 to 15 A~2. This suggests that the ligands likely adopted a head-on configuration on the nanoparticle surface, consistent with a vinylidene bonding linkage due to interfacial tautomeric rearrangements. With this conjugated interfacial bonding interaction, electronic conductivity measurements of the corresponding nanoparticle solid films showed that the nanoparticles all exhibited linear current-potential curves within the potential range of -0.8 V to +0.8 V at varied temperatures (200 to 300 K). The ohmic characters were partly ascribed to the spilling of core electrons into the organic capping layer that facilitated interparticle charge transfer. Furthermore, based on the_ temperature dependence of the nanoparticle electronic conductivity, the activation energy for interparticle charge transfer was estimated to be in the range of 70 to 90 meV and significantly, the coupling coefficient (β) was found to be 0.31 A~(-1) for nanoparticles stabilized by short-chain alkynes (1-hexyne, 1-octyne, and 1-decyne), and 1.44 A~(-1) for those with long alkynes such as 1-dodecyne, 1-tetradecyne, and 1-hexadecyne. This may be accounted for by the relative contributions of the conjugated metal-ligand interfacial bonding interactions versus the saturated aliphatic backbones of the alkyne ligands to the control of interparticle charge transfer.
机译:钌纳米粒子(2.12±0.72海里直径)稳定的自组装炔属烃分子(从1-hexyne 1-hexadecyne)在俄罗斯表面美德的形成Ru-vinylidene界面联系。测量三个振动乐队2050厘米~(1)~(1)和1950厘米~ 1980厘米(1),这归因于振动拉伸吗绑定到终端的三键纳米粒子表面。分析表明,大约有65到96炔配体/纳米粒子(取决于配体chainlength),对应于一个分子20 - 15 ~ 2的足迹。配体可能采取了正面配置纳米颗粒表面,与一个一致亚乙烯基由于界面粘结的联系互变异构的重组。界面键相互作用、电子电导率测量相应的表明纳米固体的电影纳米颗粒都表现出线性电位曲线中的潜力-0.8 V + 0.8 V在不同的温度下(200 - 300 K),电阻字符部分归因于芯电子的扩散促进的有机覆盖层颗粒间的电荷转移。the_温度的依赖关系纳米电子电导率,颗粒间的电荷的活化能转移估计70年的范围90伏,值得注意的是,耦合系数(β)被发现0.31 ~ (1)由短链炔烃纳米粒子稳定(1-octyne 1-hexyne 1-decyne), 1.44~(1)对于那些长炔烃等1-dodecyne、1-tetradecyne 1-hexadecyne。可能相对占的共轭metal-ligand的贡献界面结合和相互作用饱和脂肪族的脊椎炔配体的控制粒子间的电荷转移。

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