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Carbon Nanotube-Based Nonvolatile Random Access Memory for Molecular Computing

机译:基于碳纳米管的非易失性随机存取存储器,用于分子计算

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A concept for molecular electronics exploiting carbon nanotubes as both molecular device elements and molecular wires for reading and writing information was developed. Each device element is based on a suspended, crossed nanotube geometry that leads to bistable, electrostatically switchable ON/OFF states. The device elements are naturally addressable in large arrays by the carbon nanotube molecular wires making up the devices. These reversible, bistable device elements could be used to construct nonvolatile random access memory and logic function tables at an integration level approaching 10~(12) elements per square centimeter and an element operation frequency in excess of 100 gigahertz. The viability of this concept is demonstrated by detailed calculations and by the experimental realization of a reversible, bistable nanotube-based bit.
机译:提出了利用碳纳米管作为分子设备元件和分子线来读取和写入信息的分子电子学的概念。每个设备元件都基于悬浮的,交叉的纳米管几何形状,从而导致双稳态,静电可切换的ON / OFF状态。器件元件自然可以通过构成器件的碳纳米管分子线以大阵列寻址。这些可逆的双稳态器件元件可用于构建非易失性随机存取存储器和逻辑功能表,其集成级别接近每平方厘米10〜(12)个元件,并且元件的工作频率超过100 GHz。通过详细的计算和可逆的,基于双稳态纳米管的钻头的实验实现,证明了该概念的可行性。

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