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Solution-Processed Ionically Polarized Oxide Dielectrics and Integrated Electronic Materials for Low-Voltage Transparent Transistors

Solution-Processed Ionically Polarized Oxide Dielectrics and Integrated Electronic Materials for Low-Voltage Transparent Transistors
用于低压透明晶体管的溶液处理离子极化氧化物电介质和集成电子材料
批准号:
1005398
负责人:
Howard Katz
金额:
$60.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-01 至 2015-08-31

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中文摘要
翻译
技术摘要:该项目开发了一种变革性的想法,即以钠β-氧化铝(SBA)为例的快离子导体可以作为晶体管中的高电容栅极。 钠或其他小的无机阳离子插入Al(2-x)O3(AlOx)的非化学计量层之间。 晶体管可以是溶液制造的、透明的并且在电池电压(1- 5V)下可操作。 它们可以采用具有较高载流子迁移率的有机半导体或无机氧化物半导体。 虽然最终的技术目标是生产改进的电子电路,但这里总结的项目是揭示这种和相关电子氧化物材料的基本固态结构和离子传输机制。 这将通过(a)揭示在从溶胶-凝胶前体形成过程中穿过的详细结构中间体,(B)研究负责高介电常数的依赖于阳离子的电场诱导的离子运动,以及(c)推断阳离子可以想象地迁移出介电膜的机制,从而导致不期望的漏电流和晶体管的退化,并以最小化这些影响为目的。前两项任务将通过结合实验(合成,X射线衍射,扫描探针显微镜,频率相关的介电测量)和理论(分子动力学)研究来完成。 第三项任务将部分进行,考虑导体和半导体与BA将被集成,评估的可能性,阳离子可以渗透这种材料,并得出条件下,泄漏电流将被最小化。 因此,将致力于精炼这些伴随材料,包括新发现的Al-Zn-Sn-O导电组合物和ZnO基半导体。 感谢材料研究部(DMR)陶瓷(CER)项目的支持。非技术性总结本提案提出了一种变革性的想法,即基于钠β-氧化铝(SBA)化合物的某类陶瓷电导体可以在某些设备中用作电绝缘体。 虽然这项提案的工作将揭示SBA化合物在电子技术中如此有用的基本科学原因,但最终的影响将是大大提高印刷,透明,电池供电电路的能力,这些电路可应用于显示器,光伏系统和安装在挡风玻璃和窗户等透明基板上的传感器。 这项工作还将导致高中和本科课堂模块,展示电子制造,物理和应用超越硅技术的广泛可能性。 这些模块将可与资源有限的教育实验室中随时可用的仪器一起使用。 该项目非常适合PI与少数民族机构正在进行的纳米材料合作,包括霍华德大学和乔治王子社区学院,已经培训了三名非洲裔美国人研究人员,这种合作将扩大。 研究生和博士后研究员将接受模拟,材料合成,物理表征和电子集成技术的协同组合培训,这些技术可以应用于广泛的未来材料机会。 感谢材料研究部(DMR)陶瓷(CER)项目的支持。
英文摘要
TECHNICAL SUMMARY:This project develops the transformative idea that fast ionic conductors exemplified by sodium beta-alumina (SBA) can act as high-capacitance gate dielectrics in transistors. The sodium, or other small inorganic cation, is intercalated between nonstoichiometric layers of Al (2-x) O3 (AlOx). The transistors can be solution-fabricated, transparent, and operable at battery voltages (1-5 V). They can employ organic semiconductors or inorganic oxide semiconductors with higher carrier mobility. While the ultimate technological goal is to produce improved electronic circuits, the project summarized here is to uncover fundamental solid state structures and ion transport mechanisms in this and related electronic oxide materials. This will be done by (a) uncovering the detailed structural intermediates traversed during their formation from sol-gel precursors, (b) studying the cation-dependent electric-field-induced ionic motions that are responsible for the high dielectric constants, and (c) deducing mechanisms by which the cations could conceivably migrate out of the dielectric films, resulting in undesired leakage currents and degradation in transistors, and with the aim of minimizing these effects. The first two tasks will be accomplished through combined experimental (synthesis, X-ray diffraction, scanning probe microscopy, frequency-dependent dielectric measurements) and theoretical (molecular dynamics) study. The third task will be carried out in part by considering conductors and semiconductors with which the BAs will be integrated, evaluating the possibilities that cations could penetrate such materials, and deriving conditions under which leakage currents would be minimized. Effort will therefore be devoted toward refining these accompanying materials, including newly discovered Al-Zn-Sn-O conductive compositions and ZnO-based semiconductors. Support from the Ceramics (CER) program in the Division of Materials Research (DMR) is gratefully acknowledged.NON-TECHNICAL SUMMARYThis proposal develops the transformative idea that a certain class of ceramic electrical conductors based on a compound known as sodium beta-alumina (SBA), can act as electrical insulators in certain devices. While the work of this proposal will be to uncover the fundamental scientific reasons why the SBA compounds can be so useful in electronics technologies, the ultimate impact will be to greatly advance the capabilities of printed, transparent, battery-powered circuits that can be applied to displays, photovoltaic systems, and sensors mounted on transparent substrates such as windshields and windows. The work will also lead to high school and undergraduate classroom modules that demonstrate the broad possibilities of electronics fabrication, physics, and application beyond silicon technology. These modules will be usable with apparatus readily available in educational laboratories with limited resources. This project is a strong fit with an ongoing nanomaterials collaboration of the PIs with minority institutions including Howard University and Prince Georges Community College that has already trained three African-American researchers, and that collaboration will be expanded. Graduate students and postdoctoral fellows will be trained in a synergistic combination of simulation, materials synthesis, physical characterization, and electronic integration techniques that can be applied to a broad range of future materials opportunities. Support from the Ceramics (CER) program in the Division of Materials Research (DMR) is gratefully acknowledged.
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CAS: Structure and Mechanism for Energy Capture from Anionic Seebeck Effects in Polymers
  • 批准号:
    2349649
  • 项目类别:
    Standard Grant
  • 资助金额:
    $49.85万
  • 财政年份:
    2024
  • 负责人:
    Howard Katz
  • 依托单位:
Dual Series Gate Configuration, Materials Design, and Mechanistic Modeling for Drift-Stabilized, Highly Sensitive Organic Electrochemical Transistor Biosensors
  • 批准号:
    2402407
  • 项目类别:
    Standard Grant
  • 资助金额:
    $45.0万
  • 财政年份:
    2024
  • 负责人:
    Howard Katz
  • 依托单位:
PFI-TT: Plastic Electronic Gas Sensors for Health Monitoring via Mobile Devices
  • 批准号:
    2234261
  • 项目类别:
    Standard Grant
  • 资助金额:
    $25.0万
  • 财政年份:
    2023
  • 负责人:
    Howard Katz
  • 依托单位:
Conjugated Polymers Doped via Covalent Dopant-Molecule Adducts
  • 批准号:
    2107360
  • 项目类别:
    Standard Grant
  • 资助金额:
    $47.97万
  • 财政年份:
    2021
  • 负责人:
    Howard Katz
  • 依托单位:
海外基金