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PFI:AIR - TT: Robust Multimaterial Chalcogenide Infrared Optical Fibers

PFI:AIR - TT: Robust Multimaterial Chalcogenide Infrared Optical Fibers
PFI:AIR - TT:坚固的多材料硫族化物红外光纤
批准号:
1500292
负责人:
Ayman Abouraddy
金额:
$20.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-04-15 至 2017-03-31

项目摘要

项目成果

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中文摘要
翻译
该PFI:AIR技术转化项目的重点是将多材料光纤制造的进步转化为能够传输中红外(MIR)波长光的机械稳定光纤的生产,而商业上可用的光纤选择有限。电磁光谱的MIR范围最近变得可访问(由于半导体量子级联激光器的发展),这在化学传感,环境监测和医学成像方面开辟了令人兴奋的应用。然而,要充分利用这些传感、监测和成像机会,需要开发覆盖整个MIR光谱、价格合理、坚固耐用且易于操作的光纤。该项目通过利用最近NSF资助的多材料纤维制造的基本发现来解决这一关键需求,其中不同的材料在单个纤维束中整体结合。该光纤的光学性能由易碎的MIR玻璃决定,而上级机械性能则来自坚固的内置聚合物护套。该项目将产生三个不同的光纤原型与标准的终端连接器包装。与该市场领域领先的竞争对手MIR光纤相比,本项目开发的单片多材料光纤将提供更宽的光谱传输窗口、更低的成本和上级机械坚固性,便于处理和操作。解决了具有覆盖整个MIR光谱的透明窗口的鲁棒光纤中的技术差距,并且其中纤芯的尺寸以及纤芯与包层之间的折射率对比可以容易地被测量。控制。最近的突破是利用一步多材料预成型挤出,其中纤维预成型体-宏观放大模型的纤维-从坯料组合MIR硫属玻璃和热塑性聚合物挤出。预成型件具有厚的内置热塑性聚合物护套,该护套与玻璃热相容,因此它们可以共拉成纤维。由于玻璃被密封在聚合物内,因此预制件容易在周围环境中连续拉伸成延长的纤维长度。该项目将产生三种光纤原型:一种传输窗口可扩展到12微米波长的多模光纤,一种传输波长可达6微米的单模光纤,以及用于非线性应用的高折射率对比度光纤锥-特别是MIR超连续谱产生。所有三个原型都具有上级机械性能,并将与标准光纤连接器一起包装,以便在实际环境中使用。这个项目结合了一个研究科学家的努力,制造和测试沿着一个MBA学生的市场分析。该项目的合作PI反过来联合收割机结合技术和商业化的专业知识,并将利用独特的光纤制造设施在中央佛罗里达大学沿着与企业孵化和风险加速器计划。 此外,这项技术转化工作将受益于与中红外光纤设备公司IRFlex公司的合作,以协助从研究发现到商业现实的过渡。
英文摘要
This PFI: AIR Technology Translation project focuses on translating advances in the fabrication of multimaterial fibers to the production of mechanically stable optical fibers capable of transmitting light at mid-infrared (MIR) wavelengths for which limited commercially available optical-fiber options exist. The MIR range of the electromagnetic spectrum has recently become accessible (due to the development of semiconductor quantum cascade lasers) and this has opened up exciting applications in chemical sensing, environmental monitoring, and medical imaging. However, fully benefiting from these sensing, monitoring and imaging opportunities requires the development of optical fibers that cover the entire MIR spectrum, are affordable, robust, and easy to handle. This project addresses this critical need by leveraging recent NSF-funded fundamental discoveries in multimaterial fiber fabrication, where distinct materials are combined monolithically in a single fiber strand. The fiber's optical properties are dictated by an otherwise brittle MIR glass, while the superior mechanical properties stem from a robust built-in polymer jacket. The project will result in three distinct optical fiber prototypes packaged with standard end-connectors. When compared to the leading competing MIR fibers in this market space, the monolithic multimaterial optical fibers developed here will offer a broader optical spectral transmission window, lower cost, and superior mechanical robustness for ease of handling and manipulation.This project, as it translates from research discovery toward commercial application, addresses the technology gap in robust optical fibers that have a transparency window covering the entire MIR spectrum and in which the dimension of the core and the index contrast between the core and cladding may be readily controlled. Recent breakthroughs are exploited in one-step multimaterial preform extrusion in which a fiber preform - a macroscopic scaled up model of the fiber - is extruded from a billet combining MIR chalcogenide glasses and a thermoplastic polymer. The preform is provided with a thick, built-in thermoplastic polymer jacket that is thermally compatible with the glass and thus they may be co-drawn into a fiber. Since the glass is sealed within the polymer, the preform is readily drawn continuously in an ambient environment into extended fiber lengths. The project will result in three fiber prototypes: a multimode fiber with a transmission window extending to a wavelength of 12 microns, a single-mode fiber for transmitting up to a wavelength of 6 microns, and high-refractive-index-contrast fiber tapers for nonlinear applications - particularly MIR supercontinuum generation. All three prototypes are endowed with superior mechanical properties and will be packaged with standard optical fiber connectors to be readily used in real-world settings. This project combines the efforts of a research scientist for fabrication and testing along with an MBA student for market analysis. The project co-PIs in turn combine technical and commercialization expertise and will leverage both the unique fiber fabrication facilities at the University of Central Florida along with business incubation and venture accelerator programs. In addition, this technology translation effort will benefit from partnering with the IRFlex Corporation, The Mid-IR Fiber Devices Company, to assist with the transition from research discovery to commercial reality.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Scalable Manufacturing of Size-controllable Structured Nanoparticles via Capillary Instabilities in Multimaterial Fibers
Mid-infrared, wide-bandwidth, stable coherent optical sources generated by multi-material, nonlinear chalcogenide-glass fibers
Workshop on Next-Generation Optical Fiber Technology, Oct. 17-19, 2010 in Cocoa Beach, FL.
国内基金
海外基金
湍流和化学交互作用对H2-Air-H2O微混燃烧中NO生成的影响研究
  • 批准号:
    51976048
  • 项目类别:
    面上项目
  • 资助金额:
    61.0万元
  • 批准年份:
    2019
  • 负责人:
    邱朋华
  • 依托单位: