Advancing the Engineering Design of Bionanocomposites with Controlled Properties
Advancing the Engineering Design of Bionanocomposites with Controlled Properties
批准号:
0600317
负责人:
Lealon Martin
金额:
$40.58万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-05-01 至 2011-04-30
中文摘要
这项资助的目的是建立关于纳米颗粒尺寸、形状和团聚体结构对生物聚合物结构和性能影响的基础科学知识。 正在解决的研究目标是通过定制纳米颗粒的大小,形状和聚合物化学微观结构,使生物材料的设计,进步和应用具有理想的性能。含有纳米级(1 - 100 nm)颗粒的填充生物聚合物,即生物纳米复合材料,可以为最广泛使用的石油基聚合物提供具有相同或更好性能的可再生替代品,并实现新的应用。 在这个项目中,我们采用我们独特的小角度光散射能力,结合X射线衍射模拟,多尺度建模和一套互补的测量技术,建立一个强大的理解新开发的商业生物聚合物及其复合材料的结构-性能关系-这已经提供了结晶合成聚合物的竞争对手。 控制生物纳米复合材料的增强性能需要了解纳米填料和生物聚合物基质的局部(纳米级)和全局(微米级)结构。 拟议研究的具体成果是:1)建立新的知识,实现对生物纳米复合材料特性的基本控制; 2)为建立预测机械和屏障特性的多尺度模型提供结构和形态信息; 3)为发现成本-生物纳米复合材料的有效制造技术。该项目更广泛的影响是,它将提供一个框架,提高设计和发现成本-生物纳米复合材料的有效制造技术,可应用于消费品包装、粘合剂、涂料等更多领域。 能够控制生物材料的特性将导致商业和工业过程的重大进步。参与该计划的学生将体验(第一手)散射技术(光和X射线),多尺度(连接)建模方法和数据(X射线)模拟的集成,以实现突破性的科学发现。 PI是全国黑人工程师协会的导师,并与阿贡国家实验室和国家标准与技术研究所合作。
英文摘要
The aim of this grant is to build basic scientific knowledge on the effects of nanoparticle size, shape, and agglomerate structure on biopolymer structure and properties. The research goals that are being addressed are to enable the design, advancement, and application of biomaterials with desirable properties by tailoring nanoparticle size, shape and the polymer chemical microstructure. Filled biopolymers containing nanoscale (1 - 100 nm) particulates, i.e. bionanocomposites, can offer renewable alternatives to the most widely used petroleum-based polymers with equal or better properties and enable new applications. In this project we employ our unique small angle light scattering capabilities, in combination with X-ray diffraction simulations, multiscale modeling and a suite of complementary measurement techniques, to build a robust understanding of the structure-property relationship of newly developed commercially available biopolymers and their composites - which have been offered as competitors for crystalline synthetic polymers. Control over enhanced properties of bionanocomposites requires knowledge of the local (nanoscale) and global (microscale) structure of the nanofillers and the biopolymer matrix. Specific deliverables for the proposed research are 1) to build new knowledge for achieving fundamental control over the properties of bionanocomposites; 2) to provide structural and morphological information for building multiscale models that predict mechanical and barrier properties; and 3) to provide fundamental scientific knowledge for discovering cost-effective manufacturing technologies for bionanocomposites.The broader impact of the project is that it will provide a framework advancing the design and discovery cost-effective manufacturing technologies for bionanocomposites with applications in consumer packaging, adhesives, coatings and many more areas. Enabling the control of biomaterial properties will lead to significant advances in both commercial and industrial processes. Students participating in this program experience (first hand) the integration of scattering techniques (light and X-rays), multi-scale (connectivity) modeling approaches, and data (X-ray) simulation for breakthrough scientific discovery. The PI is a mentor for the National Society of Black Engineers and collaborates with Argonne National Laboratory and National Institute of Standards and Technology.
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会议论文
Excellence in Research/Collaborative Research: Smart Technology-enabled Nutrient Lifecycle and Supply Chain Management for Microgreens
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批准号:2000266
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项目类别:Standard Grant
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资助金额:$30.0万
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财政年份:2020
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负责人:Lealon Martin
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依托单位:
国内基金
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负责人:朱建军
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依托单位:
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资助金额:20.0万元
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负责人:廖叶华
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依托单位:
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批准号:21024805
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批准年份:2010
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负责人:廖叶华
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依托单位: