NIRT: Molecular Brushes as Components for Nanomechanical Devices
NIRT: Molecular Brushes as Components for Nanomechanical Devices
批准号:
0103307
负责人:
Sergei Sheiko
金额:
$120.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2001
资助国家:
美国
项目状态:
已结题
起止时间:
2001-07-15 至 2005-06-30
中文摘要
0103307Sheiko本提案是对“纳米科学与工程”(NSF 00-119)征集的回应。微型致动器在短响应时间内产生大应变,是纳米和生物技术领域的研究热点。它们可以用来建造微型流体泵、微型机车和微操作器。人们普遍认为,从单个大分子可以制备出极其高效和快速的致动器。由柔性主链和密集接枝的侧链组成的圆柱形刷子分子是可能的候选分子,因为它们可以根据周围环境的变化和外场的影响改变长度。提出使用具有刺激响应形状的软柱体作为开发纳米机械装置的多功能平台。最有趣的应用之一是设想一系列分子刷子,分子刷子的一端系在固体基质上,在入射光下改变其构象。这些层将被设计成产生表面浮雕光栅,沿着衬底平面传播,并传输不同的流体、小颗粒,最终传输生物细胞。为此,将在刷子的化学结构中引入红外吸收染料或光敏性偶氮苯和螺吡喃部分。类似于气管纤毛,被拴住的分子会以一种协调的方式来回跳动,并将覆盖的物质推向一定的方向。该项目将解决三个基本问题:(I)控制刷子分子长度的分子和外部参数是什么?(Ii)刷子分子在收缩/伸展过程中产生的力是什么?(Iii)在偏振光的作用下,被拴住的刷子的动力学特性是什么?PI将通过以下步骤实现他们回答这些重要问题的目标。首先,他们将准备一系列定义明确的刷子,并研究侧链长度、接枝密度和光异构化基团对刷子分子长度的具体影响。其次,他们将用原子力显微镜和磁镊单轴拉伸单个分子和系留单分子层的机械性能。实验研究将得到刷子构象的理论分析的支持。第三,建立了一套与原子力显微镜相结合的光学装置,用于对表面浮雕光栅的形貌和衍射效率进行原位研究。这将允许测量双刷单层的进入和松弛时间,并监测覆盖材料的传输。这一跨学科项目将基于精确的化学、严格的物理和生物学概念。它为学生提供了一个完美的机会,让他们掌握这些基础学科中的几个,同时获得纳米技术前沿的经验。
英文摘要
0103307SheikoThis proposal was submitted in response to the solicitation "Nanoscale Science and Engineering" (NSF 00-119). Miniature actuators, which produce large strains at short response times are of interest for nano- and biotechnologies. They can be used to construct micro fluidic pumps, tiny locomotives, and micromanipulators. It is generally believed that extremely efficient and fast actuators can be prepared from single macromolecules. Cylindrical brush molecules consisting of a flexible backbone and densely grafted side chains are possible candidates because they can change their length in response to variations in their surrounding environment and the effect of an external field. It is proposed to use soft cylinders with a stimuli-responsive shape as a multifunctional platform for the development of nanomechanical devices. One of the most interesting applications is envisioned for an array of molecular brushes, which are tethered with one end to a solid substrate and change their conformation under incident light. The layers will be designed to generate surface-relief-gratings, which propagate along the substrate plane and transport different fluids, small particles, and ultimately biological cells. For this purpose, either IR-absorber dyes or photosensitive azobenzene and spiropyran moieties will be introduced in the chemical structure of brushes. Similar to tracheal cilia, the tethered molecules will beat back and forth in a coordinated way and propel overlaying substances in a certain direction.The project will address three fundamental questions:(i) What are the molecular and external parameters controlling the length of brush molecules?(ii) What is the force developed during contraction/extension of brush molecules?(iii) What are the dynamic properties of the tethered brushes under the effect of polarized light?The PI's will achieve their goals of answering these important questions by taking the following steps. First, they will prepare a series of well-defined brushes and investigate the specific effects of the side chain length, the grafting density, and the photoisomerizable groups on the length of brush molecules. Second, they will study mechanical properties of individual molecules and tethered monolayers by stretching them uniaxially with an atomic force microscope and magnetic tweezers. The experimental studies will be supported by theoretical analysis of brush conformations. Third, an optical set-up combined with an atomic force microscope will be built for in-situ investigation of the morphology and the diffraction efficiency of the surface relief grating. This will allow the measurement of the access and relaxation times of the double-brush monolayer, and the monitoring of the transport of the overlaying substances.This interdisciplinary project will be based on precise chemistry, rigorous physics, and biological concepts. It presents a perfect opportunity for students to master several of these fundamental disciplines and at the same time gain experience at the cutting edge of nanotechnology.
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