首页> 外文期刊>Colloid and polymer science >A FASCINATING NEW FIELD IN COLLOID SCIENCE - SMALL LIGAND STABILIZED METAL CLUSTERS AND THEIR POSSIBLE APPLICATION IN MICROELECTRONICS .2. FUTURE DIRECTIONS
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A FASCINATING NEW FIELD IN COLLOID SCIENCE - SMALL LIGAND STABILIZED METAL CLUSTERS AND THEIR POSSIBLE APPLICATION IN MICROELECTRONICS .2. FUTURE DIRECTIONS

机译:胶体科学的一个崭新领域-小配体稳定的金属团簇及其在微电子学中的应用2。未来发展方向

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摘要

Small metal clusters, like Au-55(PPh(3))(12)Cl-6, which fall in the size regime of 1 - 2 nm are colloidal nanoparticles with quantum properties in the transitional range between metals and semiconductors. These chemically tailored quantum dots show by the Quantum Size Effect (QSE) a level splitting between 20 and 100 meV, increasing from small particle sizes to the molecular state. The organic ligand shell surrounding the cluster acts like a dielectric ''spacer'' generating capacitances between neighboring clusters down to 10(-18) F. Therefore, charging effects superposed by level spacing effects can be observed. The ligand-stabilized colloidal quantum dots in condensed state can be described as a novel kind of artificial solid with extremely narrow mini or hopping bands depending on the chemically adjustable thickness of the ligand shell and its properties. Since its discovery, the Single Electron Tunneling (SET) effect has been recognized to be the fundamental concept for ultimate miniaturization in microelectronics. The controlled transport of charge carriers in arrangements of ligand-stabilized clusters has been observed already at room temperature through Impedance Spectroscopy (IS) and Scanning Tunneling Spectroscopy (STS). This reveals future directions with new concepts for the realization of simple devices for Single Electron Logic (SEL). Part II presents models and connections between microscopic and macroscopic level, regardless of whether there already exist suitable nanoscale metal cluster compounds, and is aimed at the ultimate properties for a possible application in microelectronics. [References: 58]
机译:属于Au-55(PPh(3))(12)Cl-6之类的小金属簇是大小为1-2 nm的胶体纳米颗粒,其量子性质在金属和半导体之间的过渡范围内。这些化学定制的量子点通过量子尺寸效应(QSE)显示出从20到100 meV的能级分裂,从小粒径增加到分子态。簇周围的有机配体壳就像电介质“隔离物”一样,在相邻簇之间低至10(-18)F时产生电容。因此,可以观察到由水平间隔效应叠加的电荷效应。取决于配体壳的化学可调节的厚度及其性质,处于凝聚态的配体稳定的胶体量子点可以描述为一种新型的人造固体,具有极窄的微小或跳跃带。自发现以来,单电子隧穿(SET)效应已被认为是微电子学中最终微型化的基本概念。在室温下已经通过阻抗谱(IS)和扫描隧道谱(STS)观察到配体稳定簇中电荷载流子的受控传输。这揭示了用于实现单电子逻辑(SEL)简单设备的新概念的未来方向。第二部分介绍了微观和宏观层面之间的模型和联系,而不管是否已经存在合适的纳米级金属簇化合物,并且其目标是为可能在微电子学中应用的最终特性。 [参考:58]

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