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Graphene as a platform for novel nanoelectronic devices.

机译:石墨烯作为新型纳米电子器件的平台。

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摘要

Graphene's superlative electrical and mechanical properties, combined with its compatibility with existing planar silicon-based technology, make it an attractive platform for novel nanoelectronic devices. The development of two such devices is reported---a nonvolatile memory element exploiting the nanoscale graphene edge and a field-effect transistor using graphene for both the conducting channel and, in oxidized form, the gate dielectric. These experiments were enabled by custom software written to fully utilize both instrument-based and computer-based data acquisition hardware and provide a simple measurement automation system.;Graphene break junctions were studied and found to exhibit switching behavior in response to an electric field. This switching allows the devices to act as nonvolatile memory elements which have demonstrated thousands of writing cycles and long retention times. A model for device operation is proposed based on the formation and breaking of carbon-atom chains that bridge the junctions. Information storage was demonstrated using the concept of rank coding, in which information is stored in the relative conductance of multiple graphene switches in a memory cell.;The high mobility and two dimensional nature of graphene make it an attractive material for field-effect transistors. Another ultrathin layered materialmd graphene's insulating analogue, graphite oxidemd was studied as an alternative to bulk gate dielectric materials such as Al2O3 or HfO 2. Transistors were fabricated comprising single or bilayer graphene channels, graphite oxide gate insulators, and metal top-gates. Electron transport measurements reveal minimal leakage through the graphite oxide at room temperature. Its breakdown electric field was found to be comparable to SiO2, typically ∼1--3 x 108 V/m, while its dielectric constant is slightly higher, kappa ≈ 4.3.;As nanoelectronics experiments and their associated instrumentation continue to grow in complexity the need for powerful data acquisition software has only increased. This role has traditionally been filled by semiconductor parameter analyzers or desktop computers running LabVIEW. Mezurit 2 represents a hybrid approach, providing basic virtual instruments which can be controlled in concert through a comprehensive scripting interface. Each virtual instrument's model of operation is described and an architectural overview is provided.
机译:石墨烯的最高电气和机械性能,以及与现有的基于平面硅的技术的兼容性,使其成为新型纳米电子器件的诱人平台。据报道,已经开发出了两种这样的设备-一种利用纳米级石墨烯边缘的非​​易失性存储元件,以及一种使用石墨烯作为导电沟道和氧化形式的栅极电介质的场效应晶体管。这些实验是通过编写定制软件来实现的,该定制软件可以充分利用基于仪器的数据和基于计算机的数据采集硬件,并提​​供一个简单的测量自动化系统。研究了石墨烯断裂结,并表现出对电场的响应。这种切换使器件可以用作非易失性存储元件,已证明具有数千次写入周期和较长的保留时间。基于桥接连接点的碳原子链的形成和断裂,提出了一种器件操作模型。使用秩编码的概念演示了信息存储,其中信息存储在存储单元中多个石墨烯开关的相对电导中。石墨烯的高迁移率和二维性质使其成为场效应晶体管的诱人材料。研究了另一种超薄层材料—石墨烯的绝缘类似物–氧化石墨,作为诸如Al2O3或HfO 2的体栅电介质材料的替代品。制造了包括单层或双层石墨烯通道,氧化石墨栅绝缘体和金属顶栅的晶体管。电子传输测量显示在室温下通过氧化石墨的泄漏最小。发现其击穿电场与SiO2相当,典型值约为1--3 x 108 V / m,而其介电常数略高,kappa≈ 4.3 .;随着纳米电子实验及其相关仪器的复杂性不断增长,对功能强大的数据采集软件的需求仅在增加。传统上,该角色由半导体参数分析仪或运行LabVIEW的台式计算机承担。 Mezurit 2代表了一种混合方法,提供了基本的虚拟仪器,可以通过一个全面的脚本接口对它们进行一致地控制。描述了每个虚拟仪器的操作模型,并提供了体系结构概述。

著录项

  • 作者

    Standley, Brian.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Nanoscience.;Physics Condensed Matter.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 135 p.
  • 总页数 135
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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