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Molecules in 2D h-BN

Molecules in 2D h-BN
2D h-BN 中的分子
批准号:
2102643
负责人:
Michael Arnold
金额:
$23.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2021
资助国家:
美国
项目状态:
已结题
起止时间:
2021-07-01 至 2024-06-30
关键词:

项目摘要

项目成果

Michael Arnold的其他基金

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中文摘要
翻译
非技术性总结通过这个项目,由材料研究部的固态和材料化学项目支持,威斯康星州大学的Michael Arnold教授和他的研究小组将研究只有一个原子厚的片状材料的产生。这些材料将由含有硼和氮元素的电绝缘体制成。嵌入并结合在薄片中的将是超小的碳原子岛。这些岛将像分子一样小,并且,像正常分子一样,这些岛将具有精确定义的原子数量和精确定义的形状。碳岛也将模仿正常分子的电学和光学性质,但无缝集成并平放在硼氮片层中。像这样的材料,如此精确,以前从未被创造过。该项目将解决合成这些材料的挑战,并发展创造它们所需的基本理解。像这样的原子定义良好的结构有可能被用作下一代过滤器类材料,具有创纪录的效率,因为材料非常薄,因此有望影响与空气和水净化有关的社会重要性应用。此外,由此产生的材料有望拥有下一代电子和量子电子技术所需的特性,这对国防和繁荣至关重要。研究人员将通过计划的外联活动,例如通过威斯康星州大学的獾谈话倡议,向公众宣传所支助的研究和科学的影响,以及一般研究和科学的影响。分子是最终的纳米结构。它们的大小、形状和组成几乎可以无限调整,并且可以在大规模并行规模上创建精确的复制品。分子的物理、电学和光学性质可以被极大地定制-以实现绝缘、半导体和金属行为,并操纵从紫外到红外的光子。在这个项目中,由材料研究部门的固态和材料化学计划支持,我们将创建和探索分子的类似物-特别是多环芳烃(PAH)分子的类似物-它们不是自由的,而是共价嵌入,平面内,在绝缘六方氮化硼(h-BN)的结晶单层片中。虽然之前已经在h-BN中自上而下制造了碳的纳米级域,但是这些域在形状和尺寸上相对较大和/或无序,并且没有一个被分子精确地定义。在这里,原子精确的碳域将实现,从下而上,通过使用PAH分子本身来创建它们。嵌入的多环芳烃将提供常规分子的精确性和可调性,但在平面,固定化,原子薄的形式。分子嵌入的h-BN片有望实现以前不可能实现的现象-包括具有精确孔的非常薄的材料,这些孔的尺寸和形状可广泛调节(通过选择性碳蚀刻)用于分子测序或筛分应用,h-BN片材(常规绝缘的)与功能性半导体掺杂剂,该奖项反映了NSF的法定使命,并通过评估被认为值得支持使用基金会的知识价值和更广泛的影响审查标准。
英文摘要
NON-TECHNICAL SUMMARY With this project, supported by the Solid State and Materials Chemistry program in the Division of Materials Research, Professor Michael Arnold and his research group at the University of Wisconsin will investigate the creation of ultrathin, sheet-like materials that are only one atom thick. The materials will be created from an electrical insulator, containing the elements boron and nitrogen. Embedded and bonded within the sheets will be ultrasmall islands of carbon atoms. These islands will be as small as molecules, and, like normal molecules, these islands will have an exactly defined number of atoms and precisely defined shapes. The carbon islands will also mimic the electrical and optical properties of normal molecules but be seamlessly integrated and lie flat within the boron-nitrogen sheets. Materials like these, with this precision, have never been created previously. This project will address the challenge of synthesizing these materials and develop the fundamental understanding needed to create them. Atomically well-defined structures like these have the potential to be employed as next-generation filter-like materials with record-efficiency because of the materialsˈ extreme thinness and thus promise to impact applications of societal importance pertaining to the purification of air and water. The resulting materials moreover promise to possess properties needed for next-generation electronics and quantum electronics technologies, important for national defense and prosperity. The impact of the supported research and science, and of research and science in general, will be communicated to the public by the researchers through planned outreach activities, for example via the University of Wisconsin’s Badger Talks initiative. TECHNICAL SUMMARY Molecules are the ultimate nanostructures. Their size, shape, and composition can be nearly infinitely tuned, and exact replicas can be created on a massively parallel scale. Moleculesˈ physical, electrical, and optical properties can be vastly tailored – to realize insulating, semiconducting, and metallic behaviors and manipulate photons from the ultraviolet to the infrared. In this project, supported by the Solid State and Materials Chemistry program in the Division of Materials Research, we will create and explore analogs to molecules – specifically analogs to polycyclic aromatic hydrocarbon (PAH) molecules – that are not free but covalently embedded, in-plane, in crystalline monolayer sheets of insulating hexagonal boron nitride (h-BN). While nanoscale domains of carbon have been fabricated from the top-down in h-BN previously, these domains have been relatively large and/or disordered in shape and size, and none have been defined with molecular precision. Here, atomically precise carbon domains will be realized, from the bottom-up, by using PAH molecules themselves to create them. The embedded PAHs will offer the exactness and tunablility of conventional molecules but in a planar, immobilized, and atomically thin form. Molecularly embedded h-BN sheets promise phenomena not previously possible – including exceptionally thin materials with exact pores of widely tunable size and shape (through selective carbon etching) for molecular sequencing or sieving applications, h-BN sheets (conventionally insulating) with functional semiconducting dopants, and immobilized single molecules that are individually addressable.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
High-Vacuum Chemical Vapor Deposition of Monolayer Hexagonal Boron Nitride on Ge(001) from Borazine
环硼嗪Ge(001)上高真空化学气相沉积单层六方氮化硼
DOI: 10.1149/11102.0097ecst
发表时间: 2023
期刊: ECS Transactions
影响因子: --
作者: [Su, Katherine Anna, Li, Songying, Arnold, Michael Scott]
通讯作者: Arnold, Michael Scott
I-Corps: Novel Aligned Carbon Nanotube Arrays for Radiofrequency Technologies
  • 批准号:
    2313213
  • 项目类别:
    Standard Grant
  • 资助金额:
    $5.0万
  • 财政年份:
    2023
  • 负责人:
    Michael Arnold
  • 依托单位:
Directed Self-Assembly of Block Copolymer Thin Films into Useful Organized Patterns for Microelectronics and Nanofabrication.
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    2011254
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Engineering Atomically Precise Nanochannels Using Layered 2D Sheets to Enable Chemical Separation Membranes with Exceptional Permeance and Size-Selectivity
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    1705503
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    Standard Grant
  • 资助金额:
    $30.0万
  • 财政年份:
    2017
  • 负责人:
    Michael Arnold
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SNM: Carbon Nanotubes Wafers
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    1727523
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    Standard Grant
  • 资助金额:
    $149.03万
  • 财政年份:
    2017
  • 负责人:
    Michael Arnold
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国内基金
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