SBIR Phase I: Liquid Helium Transmission Electron Microscopy (TEM) Sample Holder for Atomic Imaging of Next-Generation Materials
SBIR Phase I: Liquid Helium Transmission Electron Microscopy (TEM) Sample Holder for Atomic Imaging of Next-Generation Materials
批准号:
2322155
负责人:
Benjamin Savitzky
金额:
$27.48万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2023
资助国家:
美国
项目状态:
已结题
起止时间:
2023-12-01 至 2024-11-30
中文摘要
这个小型企业创新研究第一阶段项目旨在通过开发稳定的液氦透射电子显微镜(TEM)样品支架,在低至10K的温度下对材料和设备进行原子和纳米尺度的成像。尽管透射电子显微镜成像模式是材料科学中使用的最强大的计量工具之一,但长期以来缺乏稳定的超低温能力限制了它们在相对较高温度下运行的材料和技术的应用范围。最先进的瞬变电磁机器迫切需要稳定的超低温能力,以便在一系列以前无法进入的新兴领域进行科学发现和开发。该项目旨在扩大电子显微镜市场(预计到2028年将超过100亿美元),该市场随着半导体、量子器件、可再生能源和生命科学市场的计量需求而快速增长。该项目包括开发和测试一种新型的高稳定性低温样品支架,以及在液氦温度下的高分辨率电子显微镜成像和稳定性指标的量化。为了成功地收集原子分辨率或高质量的光谱数据,高的热稳定性和振动稳定性、长的保持时间和精确的温度控制是必要的。目前的低温保持器不仅无法达到足够低的温度,而且还存在严重的不稳定性和热损失,严重影响图像分辨率。它们依赖于小的低温杜瓦,当不稳定的制冷剂(液氦)迅速蒸发时,会导致严重的温度波动和振动。该项目结合了一种创新的设计,具有可控的液氦流动冷却、振动解耦和长时间保持的精确温度调节。这项技术将导致开发一种商业仪器,将任何透射电子显微镜转变为能够为下一代技术表征新材料的超低温成像平台。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
This Small Business Innovation Research Phase I project aims to enable atomic- and nano-scale imaging of materials and devices at temperatures as low as 10 K through the development of a stable liquid helium transmission electron microscope (TEM) specimen holder. Though TEM imaging modalities are amongst the most powerful metrology tools used in materials science, a long-standing lack of stable ultra-low temperature capabilities limits the range of their application to materials and technologies that operate at relatively high temperatures. Stable ultra-low-temperature capabilities are urgently needed for state-of-the-art TEM machines to enable scientific discovery and development across a broad range of emerging, previously inaccessible fields. This project targets and expands the electron microscopy market (expected to exceed $10 billion by 2028) which is rapidly growing in tandem with metrology needs of semiconductor, quantum device, renewable energy, and life-sciences markets.This project includes the development and testing of a novel cryogenic specimen holder with high stability as well as the quantification of high-resolution TEM imaging and stability metrics at liquid helium temperatures. To successfully gather atomic resolution or high-quality spectroscopic data, high thermal and vibrational stability, long hold times, and precise temperature control are necessary. Current low-temperature holders are not only incapable of reaching cold enough temperatures, but they suffer from significant instabilities and thermal losses, heavily affecting image resolution. They rely on small cryogenic dewars which lead to severe temperature fluctuations and vibrations as the unstable cryogen (liquid helium) rapidly evaporates. This project incorporates an innovative design with controlled liquid helium flow cooling, vibration decoupling, and precise temperature regulation over long hold times. The technology will result in the development of a commercial instrument that turns any TEM into an ultra-low-temperature imaging platform capable of characterizing novel materials for next-generation technologies.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.
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