Hierarchical and Shape-Intelligent Colloidal Particles via Lithographically Patterned Layered Precursors
Hierarchical and Shape-Intelligent Colloidal Particles via Lithographically Patterned Layered Precursors
批准号:
1304214
负责人:
Rigoberto Advincula
金额:
$27.8万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-05-01 至 2015-05-31
中文摘要
技术概述:纳米到微米级粒子的设计和合成一直是界面科学和材料科学的永恒主题。通常通过溶胶-凝胶或乳液聚合方法制备具有一系列形状,大小和多分散性的颗粒。核-壳、空-壳和杂化粒子系统引起了人们的极大兴趣。然而,对于聚合物颗粒,空心壳模板和乳液聚合方法在很大程度上仅限于球形颗粒。该项目旨在通过采用高通量颗粒制造方法来超越这些限制,该方法通过光刻方法提供各种形状,尺寸,尺寸分布和核壳结构的复杂性。具体而言,将探索基于表面引发聚合(SIP)的逐层(LbL)聚电解质的光刻图案聚合物前驱体膜的新型颗粒。两层之间的相相互作用参数对比将在选择性溶剂中实现“提离和折叠”机制:LbL组件折叠形成内芯,SIP组件作为外壳。许多记录良好的化学,制造方法,和应用的LbL和SIP方法可以合并。应该有可能在这些聚合物颗粒中分层分布化学物质,从而允许各向异性相分离的多相颗粒组成。该方案的一个基本挑战是,一旦颗粒从表面释放出来,将溶剂、温度和压力环境的动力学和热力学考虑相匹配。各种界面敏感光谱、散射、ζ电位和显微技术将被用来表征这些新的胶体材料。这些粒子有望用于分子、染料、无机纳米粒子作为纳米载体的包封,也可作为研究聚合物和杂化材料中胶体现象的重要平台,可以通过理论和模拟研究来增强。非技术总结:该项目将提供可用于制药工业、显示工业和环境或健康监测协议的新材料和产品。例如:药物可以按设计封装和释放;新的发光材料可以基于封装的纳米颗粒制成,各种人工形状和大小的颗粒可以用来模拟有害的病毒和噬菌体。许多科学家和工程师将参与探索光刻技术的极限,类似于半导体微处理器工业中使用的工艺,但将其应用于粒子生产和研究。一个重要的直接影响是对年轻科学家和研究人员的教育和培训,他们擅长新材料的合成和表征,并结合开发高通量制造方法。将培养两名在材料合成、胶体制备和表面表征方面有经验和资格的高级博士候选人。高素质的本科生也将得到指导。Advincula研究小组的分析和材料专业知识涵盖了聚合物材料,混合材料和表面科学的不同领域,也是高中生科学和教育推广的有效平台。首席研究员(PI)将提供一门系里的课程,包括胶体粒子的设计和使用,以及表面分析在材料研究中的重要性。PI将面向有才华的少数民族学生和女性参与,这是PI自学术生涯开始以来的承诺。
英文摘要
TECHNICAL SUMMARY: The design and synthesis of nano- to micron-sized particles have been a perennial theme in interfacial and materials science. Particles have been prepared with a range of shape, size, and polydispersities more commonly through the sol-gel or emulsion polymerization methods. There has been a high interest on core-shell, hollow-shell, and hybrid particle systems. However, for polymer particles, hollow-shell templating and emulsion polymerization methods are largely limited to spherically shaped particles. This project aims to go beyond these limitations by employing a high-throughput particle fabrication method that offers various complexities in shape, size, size distribution, and core-shell architectures through lithographic methods. Specifically, novel particles based on lithographically patterned polymer precursor films of layer-by-layer (LbL) polyelectrolytes with a top layer of grafted polymer brushes by surface initiated polymerization (SIP) will be explored. The phase-interaction parameter contrast between the two layers will enable a "lift-off and fold-in" mechanism in a selective solvent: the LbL component folding in to form the interior core and the SIP as the outer shell. Many of the well-documented chemistries, fabrication methods, and applications of the LbL and SIP methods can be incorporated. It should be possible to distribute hierarchically the chemical species within these polymer particles allowing for anisotropically phase-separated multiphasic particle compositions. A fundamental challenge of the protocol is to match the kinetic and thermodynamic considerations of the solvent, temperature, and pressure environments once the particles are released from the surface. Various interfacial-sensitive spectroscopic, scattering, zeta potential, and microscopic techniques will be utilized to characterize these new colloidal materials. These particles are expected to be useful for the encapsulation of molecules, dyes, inorganic nanoparticles as nanocarriers and also serve as an important platform for the investigation of colloidal phenomena in polymeric and hybrid materials that can be augmented by theory and simulations studies.NON-TECHNICAL SUMMARY: The project will make available novel materials and products that can be used for the pharmaceutical industry, display industry, and environmental or health monitoring protocols. For example: drugs can be encapsulated and released by design; new light emitting materials can be made based on encapsulated nanoparticles, and particles with various artificial shapes and sizes can be used to mimic harmful viruses and bacteriophages. A number of scientists and engineers will be involved in exploring the limits of lithographic technologies similar to processes used for the semi-conductor microprocessor industry but applying it to particle production and investigation. An important immediate impact is the education and training of young scientists and researchers who are skilled in the synthesis and characterization of new materials combined with developing high-throughput fabrication methods. Two advanced Ph.D. candidates who are experienced and qualified in materials synthesis, colloidal fabrication, and surface characterization will be trained. Highly qualified undergraduate students will also be mentored. The analytical and materials expertise in the Advincula Research group encompasses different areas of polymer materials, hybrid materials, and surface science and has also been an effective platform for science and education outreach among high school students. The Principal Investigator (PI) will offer a Departmental course to include the design and uses of colloidal particles and the importance of surface analysis in materials research. The PI will target talented minority students and women to participate, a commitment by the PI since the beginning of his academic career.
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会议论文
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