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High Resolution Unconventional Lithography for Advanced Materials

High Resolution Unconventional Lithography for Advanced Materials
用于先进材料的高分辨率非常规光刻
批准号:
EP/W006502/1
负责人:
Radha Boya
金额:
$118.48万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --

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中文摘要
翻译
先进的材料和技术为重要的研究基础和与工业合作伙伴的接触奠定了基础,以确定日常生活和社会的潜在应用。电子、量子和自旋电子设备与纳米科学相结合,有可能颠覆现有技术,提供更好的性能。这类器件将有广泛的潜在应用,并将影响到能源、纳米技术、医疗保健和传感器等各个领域。采用先进材料的纳米和量子技术器件应用需要精确制造纳米级图案,并对显示出固有功能的材料进行纳米结构。现有的纳米加工工具有几种,其中电子束光刻被学术界广泛用于写入纳米级特征。但是,由于难以大面积制备任意复杂的纳米粒子,需要较高的真空度,对衬底的选择较少,制备时间较长,限制了高通量的生产,使生产成本较高。值得注意的是,纳米制造仍然具有挑战性,大多数技术都受到其分辨率和速度的限制。因此,迫切需要最先进的制造基础设施,能够提供纳米空间分辨率和高速、简单且具有成本效益的方法来开发新的器件及其放大。拟议的非传统高分辨率纳米制造设施HiRes将是一个新的国家设施,将为先进的纳米材料制备和表征提供缺失的工具。HiRes工具使用直接加热探头光刻,以高速、精确和可靠的方式产生20 nm以下的特征。能够制造这种窄结构的传统光刻技术使用电子或离子,但是它们可能会导致结构损伤,容易在制造过程中产生聚合物抗蚀剂残留,并且通常与新材料不兼容。HiRes提供了一项改变游戏规则的技术,具有高分辨率(最小显示特征尺寸为7 nm)、无损光刻(热是刺激)、多层次3D纳米结构、高速(1 mm/S)、无标记覆盖、相关拼接、适应新兴材料并与各种衬底(包括柔性和可穿戴材料、生物材料)兼容。HiRes能够制造高分辨率的纳米级特征,应用于高性能计算、高密度数据存储、太赫兹范围内的设备、亚波长波导、光子晶体和等离子体结构等。HiRes纳米制造和表面表征套件将安装在曼彻斯特大学国家石墨烯研究所(NGI)内,将为纳米制造和先进功能材料研究提供前所未有的能力。这是一家国家纳米制造设施,拥有英国/欧盟最大的此类洁净室设施之一,是石墨烯和其他2D材料研究的世界领先中心。英国学者和从事这一领域研究的行业将通过NGI和亨利·罗伊斯研究所(英国国家先进材料设施)获得招聘信息。我们预计,这一尖端设施将促进雄心勃勃的多学科合作研究,并为新的令人兴奋的研究提供平台,特别是为我们的早期职业研究人员。
英文摘要
Advanced materials and technologies underpin a significant research base and engagement with the industrial partners to identify the potential applications for everyday life and society. Electronic, quantum and spintronic devices integrated with nanoscience, have the potential to disrupt the existing technologies, providing enhanced performance. Such devices will have a wide range of potential applications and will influence various sectors, such as energy, nanotechnology, healthcare, and sensors.Nano- and quantum technology device applications with advanced materials require precise fabrication of nanoscale patterns, and nanostructuring of materials that exhibit an intrinsic functionality. There are several existing nanofabrication tools and among all electron-beam lithography is extensively used in academia for writing nanoscale features. However, there are several limitations - difficulty to generate arbitrary and complex nanopatterns on large areas, need of high vacuum conditions, selective to only few substrates, time consuming, which all limit the high throughput and make the production expensive. Notably, nanofabrication remains challenging, with majority of techniques limited by their resolution and speed. There is therefore an urgent need for stat-of-the-art fabrication infrastructure that can provide nanometer spatial resolution with high speed, simple and cost effective methodologies to develop novel devices and their scale-up.The proposed unconventional high-resolution nanofabrication facility, HiRes, will be a new national facility and will provide the 'missing tool' for advanced nanoscale material preparation and characterisation. The HiRes tools produce features below 20 nm with high speed, precision and reliability using direct heated probe lithography. The conventional lithographic techniques capable of producing such narrow structures use electrons or ions, however they may induce structural damage, are prone to polymeric resist residues from the fabrication process, and often incompatible with new materials. HiRes offers a game-changer technology with high-resolution (minimum demonstrated feature size 7 nm), damage-free lithography (heat is the stimulus), 3D nanostructuring of multiple levels, high speed (1 mm/s), marker-less overlay, correlation stitching, adaptable to emerging materials and compatible with a variety of substrates (including flexible and wearables, biomaterials). HiRes enables the fabrication of nanoscale features with high resolution for applications in high performance computing, high density data storage, devices operating in THz range, sub-wavelength waveguides, photonic crystals and plasmonic structures, to name a few.The HiRes nanofabrication and surface characterization suite will be installed within the National Graphene Institute (NGI) at the University of Manchester and will provide unprecedented capability for nanofabrication and advanced functional materials research. This is a national nanofabrication facility which has one of the largest such cleanroom facilities in the UK/EU, and is a world leading centre for research on graphene and other 2D materials. Access to the HiRes will be made available to UK academics and industry undertaking research in this area through the NGI and Henry Royce Institute, UK national facility for Advanced Materials. We expect this cutting edge facility will both foster ambitious multidisciplinary collaborative research, and provide a platform for new exciting research, particularly for our early career researchers.
期刊论文(1)
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会议论文
DOI: 10.1038/s41596-023-00911-x
发表时间: 2023-11
期刊: Nature Protocols
影响因子: 14.8
作者: [Ankit Bhardwaj;Marcos Vinicius Surmani Martins;Yi You;Ravalika Sajja;Max Rimmer;S. Goutham;Rongrong Qi;Sidra Abbas Dar;Boya Radha;A. Keerthi]
通讯作者: Ankit Bhardwaj;Marcos Vinicius Surmani Martins;Yi You;Ravalika Sajja;Max Rimmer;S. Goutham;Rongrong Qi;Sidra Abbas Dar;Boya Radha;A. Keerthi
FLUXIONIC: Controlled transport of water and ions in nanoconfinement
  • 批准号:
    EP/Y031156/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $33.22万
  • 财政年份:
    2024
  • 负责人:
    Radha Boya
  • 依托单位:
Nano manufacturing of ultrathin membranes
  • 批准号:
    EP/X019225/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $25.79万
  • 财政年份:
    2023
  • 负责人:
    Radha Boya
  • 依托单位:
Ion Transport through Atomically Thin Cap74illaries
  • 批准号:
    EP/R013063/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $12.9万
  • 财政年份:
    2018
  • 负责人:
    Radha Boya
  • 依托单位:
海外基金