Growth of Tensile Germanium Nanowires Embedded in a III-V Matrix
Growth of Tensile Germanium Nanowires Embedded in a III-V Matrix
批准号:
1713068
负责人:
Minjoo Lee
金额:
$35.21万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-09-14 至 2019-05-31
中文摘要
非技术描述:电子和光子材料的许多特性是由它们化学键之间的长度和角度决定的。应力和应变可以轻微地改变这些键,但会导致材料与光和电荷相互作用的方式发生深刻的变化。锗在这方面特别值得注意。在正常状态下,锗是一个较差的发光体,而键长变化2%使其能够非常有效地发光。该项目旨在通过将锗纳米结构嵌入到诱导应力的基质中来设计锗纳米结构的特性。将Ge纳米结构嵌入到外源载体中形成的纳米复合材料具有新的光学和电学特性。该研究项目与教育和外展活动相结合。除了为研究生和本科生提供跨学科研究培训外,PI还定期与工程专业的初级教师举行会议,讨论如何通过K-12教育来改善工作与生活的平衡,这是学术界科学家日益关注的问题。通过这些外展活动,他运用自己的个人经验,鼓励初级教师发展创新的外展活动。另一项活动是在威尔伯·克罗斯高中(Wilbur Cross High School)为有才华的高年级学生提供大学预科外展服务。威尔伯·克罗斯高中是纽黑文一所种族和经济多元化的公立高中。技术描述:本项目旨在展示由嵌入III-V矩阵的拉伸应变锗纳米线组成的新型纳米复合材料。最近的研究表明,锗纳米膜、纳米线、微盘和微桥的性能可以使用外部应力源来调节,以施加大的双轴或单轴拉伸应变。在本项目中,研究了分子束外延生长过程中表面介导的相分离作为在高拉伸应变的III-V型基质中生长外延锗纳米结构的新方法。具体来说,任务1试图找出Ge/III-V纳米复合材料的生长条件、结构和性能之间的联系,包括对界面应变耦合的基本理解;任务2的重点是矩阵组成和晶格常数对锗相分离动力学和由此产生的微观结构的耦合影响。最后,任务3试图了解当纳米线被调制成纳米棒或量子点时结构和性质的变化。设计和生长具有以前无法达到的应变状态的Ge/III-V纳米复合材料的能力可能会导致Ge的一系列前所未有的材料特性,例如间接间隙到直接间隙的转换,甚至成为半金属材料。此外,对外延纳米复合材料的基本理解可以应用于广泛的其他材料系统,如复杂的氧化物、稀释磁性半导体和高度不匹配的合金。
英文摘要
Non-technical Description:Many of the properties of electronic and photonic materials are determined by the length of and the angle between their chemical bonds. Stress and strain can slightly alter these bonds, but cause profound changes in the way that materials interact with both light and electrical charge. Germanium is particularly noteworthy in this regard. A 2% change in bond length enables it to emit light very efficiently while in its normal state, germanium is a poor light emitter. This project seeks to engineer the properties of germanium nanostructures by embedding them into a matrix that induces stress. Nanocomposites formed from Ge nanostructures embedded in a foreign host enable new optical and electrical properties. The research project is integrated with the education and outreach activities. Besides interdisciplinary research training provided at the graduate and undergraduate levels, the PI schedules regular meetings with junior faculty in engineering to discuss how K-12 outreach can improve work-life balance, a growing concern among academic scientists. Through these outreach activities, he uses his personal experience to encourage junior faculty members in developing innovative outreach activities. Another activity involves pre-college outreach to talented seniors at Wilbur Cross High School, a racially and economically diverse public high school in New Haven.Technical Description:This project aims to demonstrate novel nanocomposite materials consisting of tensile-strained Ge nanowires embedded in III-V matrices. Recent research has shown that the properties of Ge nanomembranes, nanowires, microdisks, and microbridges can be tuned using external stressors to apply large biaxial or uniaxial tensile strains. In this project, surface-mediated phase separation during molecular beam epitaxy growth is investigated as a new approach to grow epitaxial Ge nanostructures embedded in a III-V matrix with high tensile strain. Specifically, Task 1 seeks to draw connections between growth conditions, structure, and properties of Ge/III-V nanocomposites, including basic understanding of interfacial strain coupling; Task 2 focuses on the coupled effects of matrix composition and lattice constant on the kinetics of Ge phase separation and the resulting microstructures. Finally task 3 seeks to understand the changes in structure and properties when the nanowires are modulated into nanorods or quantum dots. The ability to design and grow Ge/III-V nanocomposites with previously unattainable strain states may lead to a range of unprecedented material properties for Ge, such as the indirect-gap to direct-gap conversion or even becoming a semi-metallic material. Moreover, the fundamental understanding of epitaxial nanocomposites could apply to a wide range of other material systems such as complex oxides, dilute magnetic semiconductors, and highly mismatched alloys.
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会议论文
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资助金额:$22.5万
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依托单位:
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批准号:1506371
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项目类别:Standard Grant
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资助金额:$39.0万
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资助金额:$55.08万
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财政年份:2010
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负责人:Minjoo Lee
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依托单位:
海外基金