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Synthesis of Doped, Plasmonic Nanodiamonds from Vapor Precursors by Plasma-based Strategies

Synthesis of Doped, Plasmonic Nanodiamonds from Vapor Precursors by Plasma-based Strategies
通过基于等离子体的策略从蒸气前体合成掺杂的等离子体纳米金刚石
批准号:
1708742
负责人:
Mohan Sankaran
金额:
$44.67万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-09-01 至 2020-12-31

项目摘要

项目成果

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中文摘要
翻译
非技术描述:当光照射在金属上时,它可能会导致材料中的自由电子一致移动,这种集体振荡被称为等离子体激元。金属的等离子体特性是世界各地装饰建筑物的彩色玻璃窗的一些鲜艳色彩的原因。与此同时,等离子体现象是新兴电信设备、能量收集技术和医疗保健的核心。 然而,最常研究的等离子体金属金和银具有若干缺点,包括其相对高的成本、有限的光学性质和能量损失。 或者,用有意添加的杂质原子生长的半导体也表现出可调的等离子体特性,同时还与微电子制造工艺兼容。该项目旨在添加掺杂金刚石,由于其光学透明性,化学惰性和生物相容性,作为一种新的基于等离子体的材料。 本科生和高中生参与研究,以激励和准备他们的职业生涯在科学,技术和工程desciplines。 此外,计划在撒哈拉以南非洲和意大利为研究生提供国际经验,以说明研究与社会挑战之间的联系。技术说明:该项目的目标是开发金刚石作为等离子体材料。 该项目分为两个重点。第一个推力包括掺杂有杂质的纳米金刚石的合成,其可以支持局部表面等离子体共振。第二个推力地址掺杂纳米金刚石的等离子体特性的光学表征。 为了合成掺杂的纳米金刚石,利用等离子体工艺,其中分子蒸气前体解离成均匀(无衬底)成核的气溶胶颗粒。 掺杂通过金刚石核与杂质原子的共沉淀来进行,类似于化学气相沉积。 利用一套材料分析技术对掺杂水平和掺杂性质(表面与本体)进行评估。 所得材料的光学性质的特征在于可变角光谱椭圆偏振法和暗场显微镜。 一个跨学科的团队正在合作进行研究,交流材料合成,材料表征和光谱学方面的知识,共同目标是创造一种全新的上级等离子体材料。低损耗和生物相容的等离子体纳米金刚石可能会释放几个技术机会,涵盖从量子计算到精密医学的应用。
英文摘要
Nontechnical Description: When light impinges on a metal it may cause the free electrons in the material to move in unison, with the collective oscillations known as plasmons. The plasmonic properties of metals are responsible for some of the vibrant colors of stained glass windows decorating buildings all around the world. At the same time, plasmonic phenomena are at the heart of emerging telecommunications devices, energy harvesting technologies, and healthcare. However, the most commonly studied plasmonic metals, gold and silver, have several drawbacks including their relatively high cost, limited optical properties, and energetic losses. Alternately, semiconductors grown with intentionally added impurity atoms also exhibit tunable plasmonic properties while additionally being compatible with microelectronics manufacturing processes. This project seeks to add impurity-doped diamond, due to its optical transparency, chemical inertness, and biocompatibility, as a new semiconductor-based plasmonic material. Undergraduate and high school students are involved in the research to motivate and prepare them for careers in science, technology and engineering desciplines. In addition, international experiences are planned in sub-Saharan Africa and Italy for graduate students to illustrate the connection between research and societal challenges.Technical Description: The goal of the project is to develop diamond as a plasmonic material. The project is divided into two thrusts. The first thrust comprises synthesis of nanodiamonds doped with impurities, which can support localized surface plasmon resonances. The second thrust addresses optical characterization of the plasmonic properties of doped nanodiamonds. To synthesize doped nanodiamonds, a plasma process is utilized in which molecular vapor precursors are dissociated to homogeneously (substrate-free) nucleated aerosol particles. Doping is carried out by co-precipitation of the diamond nuclei with the impurity atoms, analogous to chemical vapor deposition. Assessment of the doping level and nature of doping (surface vs. bulk) is carried out utilizing a suite of materials analysis techniques. The optical properties of the resulting material are characterized by variable angle spectroscopic ellipsometry and dark field microscopy. An interdisciplinary team is collaborating on the research, exchanging knowledge in materials synthesis, materials characterization, and optical spectroscopy, with a common goal of creating a de novo class of superior plasmonic materials. Low loss and biocompatible plasmonic nanodiamonds may unlock several technological opportunities, spanning applications from quantum computing to precision medicine.
期刊论文(5)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1002/ppap.202000009
发表时间: 2020-05
期刊: Plasma Processes and Polymers
影响因子: 3.5
作者: [Yongkun Sui;C. Zorman;R. M. Sankaran]
通讯作者: Yongkun Sui;C. Zorman;R. M. Sankaran
Synthesis of large-area MoS 2 films by plasma-enhanced chemical film conversion of solution-processed ammonium tetrathiomolybdate
溶液法四硫代钼酸铵等离子体增强化学膜转化合成大面积MoS2薄膜
DOI: 10.1116/6.0000599
发表时间: 2020
期刊: Journal of Vacuum Science & Technology A
影响因子: 2.9
作者: [Bhattacharya, Souvik, Liu, Tianqi, Ye, Zhipeng, He, Rui, Mohan Sankaran, R.]
通讯作者: Mohan Sankaran, R.
DOI: 10.1021/acsphotonics.9b00764
发表时间: 2019-08-01
期刊: ACS PHOTONICS
影响因子: 7
作者: [ElKabbash, Mohamed, Sreekanth, Kandammathe, V, Strangi, Giuseppe]
通讯作者: Strangi, Giuseppe
DOI: 10.1103/physrevlett.122.203901
发表时间: 2019-05-22
期刊: PHYSICAL REVIEW LETTERS
影响因子: 8.6
作者: [ElKabbash, Mohamed, Miele, Ermanno, Strangi, Giuseppe]
通讯作者: Strangi, Giuseppe
ECLIPSE: Mechanistic understanding and control of nitrogen activation in an atmospheric-pressure plasma-liquid process
Synthesis of Doped, Plasmonic Nanodiamonds from Vapor Precursors by Plasma-based Strategies
Understanding plasma nucleation for a priori control of synthesis of carbon allotropes at the nanoscale
  • 批准号:
    1335990
  • 项目类别:
    Standard Grant
  • 资助金额:
    $18.0万
  • 财政年份:
    2013
  • 负责人:
    Mohan Sankaran
  • 依托单位:
Triboelectric charging of granular materials
  • 批准号:
    1235908
  • 项目类别:
    Standard Grant
  • 资助金额:
    $29.82万
  • 财政年份:
    2012
  • 负责人:
    Mohan Sankaran
  • 依托单位:
海外基金