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NIRT: Protein-aided Nanomanufacturing

NIRT: Protein-aided Nanomanufacturing
NIRT:蛋白质辅助纳米制造
批准号:
0709131
负责人:
Daniel Schwartz
金额:
$128.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-07-01 至 2012-06-30

项目摘要

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中文摘要
翻译
这项研究是响应活性纳米结构和纳米系统计划,NSF 06-595,类别NIRT。纳米级制造面临着传统的挑战,包括确保卓越的质量、成本、速度和生产灵活性,以及对产品精确分子/原子结构的限制。本研究旨在开发分子、硬件和软件,以满足分层纳米制造的挑战。通过组合生物学鉴定的无机合成蛋白(ISPs)将实现对溶液加工无机材料的精确控制。isp是生长的“种子”,当与工程水电解质接触时,可以使目标无机材料成核。ISP种子“种植”的硬件将依赖于蛋白质兼容的图案技术,浸笔纳米光刻,微接触印刷和热响应性蛋白质吸附。新的软件算法正在开发中,用于计算在表面上播种ISP种子的最佳位置,以最少的工具移动次数产生最高精度的目标。蛋白质辅助制造过程的最后一步是将种子表面浸入生长电解质中,使物体自发生长。将讨论几个科学问题。快速识别对特定无机多晶具有选择性亲和力的isp是理解和控制具有所需结晶度的材料生长的关键。本文将研究蛋白质图像化方法对isp分子取向和合成活性的影响,以及图像化和生长的尺度依赖性。将开发强大的几何建模和刀具路径规划软件,以确保在分层几何结构上各向同性和各向异性晶体生长的良好构建保真度。这项研究解决了与替代能源、可持续性以及科学和工程人力资源发展相关的关键社会挑战。本研究的技术测试平台是ZnO太阳能电池的制造,其中新的纳米制造方法为太阳能转换的性能和成本提供了显着改善的潜力。目前,太阳能电池和大多数电子设备都是用高温、低压和有毒的试剂制造的。本文提出的室温、水基蛋白质辅助制造工艺需要适度的能源投入,并使用低毒前体试剂,从而影响我们经济的可持续性和效率。在这个项目上工作的研究生将被整合到纳米技术导向的项目中,这些项目旨在提高科学家和工程师的多样性,以及建立全球合作伙伴关系,使他们有机会获得国际经验。
英文摘要
This research was received in response to the Active Nanostructures and Nanosystems initiative, NSF 06-595, category NIRT. Manufacturing at the nanometer-scale has the traditional challenges associated with ensuring superior quality, cost, speed, and production flexibility, as well as added constraints on the precise molecular/atomic configuration of the product. This research seeks to develop the molecules, hardware, and software needed to meet the challenges of hierarchical nanomanufacturing. Precise control of solution processed inorganic materials will be achieved using inorganic synthesizing proteins (ISPs) that are identified via combinatorial biology. ISPs are growth 'seeds' that can nucleate the target inorganic materials when brought into contact with an engineered aqueous electrolyte. Hardware for ISP seed 'planting' will rely on the protein-compatible patterning techniques dip-pen nanolithography, micro-contact printing, and thermo-responsive protein adsorption. New software algorithms are being developed to compute the optimal locations for planting ISP seeds on a surface to produce the highest accuracy object with the fewest number of tool moves. The final step in the protein-aided manufacturing process is to immerse the seeded surface in the growth electrolyte to spontaneously grow the object. Several scientific issues will be addressed. Rapidly identifying ISPs with selective affinity for specific inorganic polymorphs is key to understanding and controlling the growth of materials with desired crystallinity. The impact of protein patterning method on the molecular orientation and synthesis activity of ISPs will be studied, as will the scale-dependence of patterning and growth. Robust geometric modeling and tool path planning software will be developed to ensure good build fidelity for both isotropic and anisotropic crystal growth over hierarchical geometries. This research addresses key societal challenges associated with alternative energy, sustainability, and the development of scientific and engineering human resources. The technology test bed for this research is the fabrication of ZnO solar cells, where new nanomanufacturing approaches offer the potential for significant improvements in performance and cost of solar energy conversion. Currently, solar cells and most electronic devices are made using high temperature, low pressure, and toxic reagents. The room temperature, water-based protein-aided manufacturing process proposed here demands modest energy inputs and uses low toxicity precursor reagents, thereby impacting the sustainability and efficiency of our economy. The graduate students working on this project will be integrated into nanotechnology-oriented programs aimed at improving the diversity of scientists and engineers, as well as a global partnership where they will have the opportunity to gain international experiences.
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Catalyzing Electrochemical Data Sciences: Education and Research Opportunities Workshop
  • 批准号:
    2034796
  • 项目类别:
    Standard Grant
  • 资助金额:
    $5.0万
  • 财政年份:
    2020
  • 负责人:
    Daniel Schwartz
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Measuring the benefits of museum experiences as preparation for future learning
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    1337414
  • 项目类别:
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  • 资助金额:
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  • 财政年份:
    2013
  • 负责人:
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Single-Molecule Methods for Interfacial Dynamics
  • 批准号:
    1306108
  • 项目类别:
    Continuing Grant
  • 资助金额:
    $49.3万
  • 财政年份:
    2013
  • 负责人:
    Daniel Schwartz
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Nimble Assessments: Tools for the Design and Analysis of Interactive Assessments
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    1228831
  • 项目类别:
    Standard Grant
  • 资助金额:
    $80.0万
  • 财政年份:
    2012
  • 负责人:
    Daniel Schwartz
  • 依托单位:
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