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SNM: Technologies for Nanoparticle Monolayer Self-Organization and Deposition

SNM: Technologies for Nanoparticle Monolayer Self-Organization and Deposition
SNM:纳米粒子单层自组织和沉积技术
批准号:
1120399
负责人:
James Gilchrist
金额:
$110.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-08-15 至 2016-07-31

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中文摘要
翻译
主要研究者:James F Gillian提案编号:1120399这项研究旨在推进纳米粒子单层自组装和沉积的基础制造科学,作为商业纳米制造的单元操作。 具体而言,拟议的项目将研究自组装方法的基本方面,将这些发现纳入连续的卷到卷商业规模的过程,并开发利用这些过程的新应用。 这些过程将使生产的纳米多孔膜,灵活的染料敏化太阳能电池(DSSC),和发光二极管(LEDs)。智力MeritThis可扩展的nanomanufacturing计划的重点是两个独立的,但从根本上相关的连续过程,存款自组装粒子阵列的基板上的发展。 第一个过程集中于对流沉积,第二个过程集中于自动化Langmuir-Blodgett沉积。 这两个过程都利用了限制在薄膜中的颗粒的毛细相互作用,用于定向颗粒自组装。探索这些过程的基本机制,局限性和稳定性的实验和计算方法将推进合理的规模和连续操作,并确定新的沉积控制参数。 这一基本见解将作为确定扩展用途和目标应用程序的基础。 为了确保这些过程的可行性和鲁棒性,三个能源和生物工程相关的应用将利用来自这些过程的自组装颗粒沉积串联开发。 这些包括开发染料敏化太阳能电池(DSSC)中的纳米结构染料载体,发光二极管(LED)的涂层和内部结构,以及用于分子到病毒分离的大面积周期性纳米多孔膜。 广泛适用的商业颗粒单层沉积工艺的开发可能对许多工业应用产生深远的影响。通过毛细管相互作用进行胶体自组装的基础研究以及随之而来的基础科学方面的研究和纳米多孔膜,DSSC和LED的可规模化生产也可能影响各种科学学科和行业,并可能导致疾病检测和能源应用的关键领域的重大进展。 与包括Versaills,LLC和PAower Optics LLC在内的工业合作伙伴的直接合作将指导商业化的努力。 本科生和研究生将接受规模扩大,表面科学,粒子技术,自组装,光化学,分离和多种表征技术的原则培训。 与利哈伊教育学院成员合作的一项小学生倡议将使K-5学生接触与基础表面科学和科学方法有关的主题。
英文摘要
PI: James F GilchristProposal Number: 1120399This research seeks to advance the fundamental manufacturing science of nanoparticle monolayer self-assembly and deposition as a unit operation for commercial nano manufacturing. Specifically, the proposed project will investigate the fundamental aspects of self-assembly methods, incorporate these discoveries into continuous roll-to-roll commercial-scale processes, and develop novel applications that utilize these processes. These processes will enable production of nanoporous membranes, flexible dye sensitized solar cells (DSSCs), and light emitting diodes (LEDs).Intellectual MeritThis scalable nanomanufacturing program focuses on development of two separate but fundamentally related continuous processes that deposit self-assembled particle arrays on substrates. The first process focuses on convective deposition, and the second process focuses an automated Langmuir-Blodgett deposition. Both processes utilize capillary interactions of particles confined in thin films for directed particle self-assembly. Experimental and computational methods for exploring the fundamental mechanisms, limitations, and stabilities of each of these processes will advance rational scale-up and continuous operation and determination of new deposition control parameters. This fundamental insight will serve as the foundation for identifying expanded uses and target applications. To ensure feasibility and robustness of these processes, three energy and bioengineering-related applications will be developed in tandem utilizing self-assembled particle depositions derived from these processes. These include development of nanostructured dye supports in dye sensitized solar cells (DSSCs), coatings and internal structures for light emitting diodes (LEDs), and large-are periodic nanoporous membranes for molecular to viral separations. Broader impacts Development of broadly applicable, commercial particle monolayer deposition processes could have far-reaching impact on a multitude of industrial applications. Fundamental research on colloidal self-assembly via capillary interactions and concomitant research into fundamental scientific aspects and scalable production of nanoporous membranes, DSSCs, and LEDs could also impact a wide variety of scientific disciplines and industries, and could lead to significant advancements in key areas of disease detection and energy applications. Direct collaboration with industrial partners, including Versatilis, LLC and PAower Optics LLC will guide efforts to commercialization. Undergraduate and graduate students will be trained in the principles of scale-up, surface science, particle technology, self-assembly, photovoltaics, separations, and a multitude of characterization techniques. A primary student initiative in collaboration with members of the Lehigh College of Education will expose K-5 students to topics related to fundamental surface science and scientific methods.
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海外基金