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Study on Buckling of Stiff Thin Films on Soft Substrates as Functional Materials.

机译:作为功​​能材料的软质基底上刚性薄膜屈曲的研究。

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摘要

In engineering, buckling is mechanical instability of walls or columns under compression and usually is a problem that engineers try to prevent. In everyday life buckles (wrinkles) on different substrates are ubiquitous -- from human skin to a rotten apple they are a commonly observed phenomenon. It seems that buckles with macroscopic wavelengths are not technologically useful; over the past decade or so, however, thanks to the widespread availability of soft polymers and silicone materials micro-buckles with wavelengths in submicron to micron scale have received increasing attention because it is useful for generating well-ordered periodic microstructures spontaneously without conventional lithographic techniques.;This thesis investigates the buckling behavior of thin stiff films on soft polymeric substrates and explores a variety of applications, ranging from optical gratings, optical masks, energy harvest to energy storage.;A laser scanning technique is proposed to detect micro-strain induced by thermomechanical loads and a periodic buckling microstructure is employed as a diffraction grating with broad wavelength tunability, which is spontaneously generated from a metallic thin film on polymer substrates.;A mechanical strategy is also presented for quantitatively buckling nanoribbons of piezoelectric material on polymer substrates involving the combined use of lithographically patterning surface adhesion sites and transfer printing technique. The precisely engineered buckling configurations provide a route to energy harvesters with extremely high levels of stretchability.;This stiff-thin-film/polymer hybrid structure is further employed into electrochemical field to circumvent the electrochemically-driven stress issue in silicon-anode-based lithium ion batteries. It shows that the initial flat silicon-nanoribbon-anode on a polymer substrate tends to buckle to mitigate the lithiation-induced stress so as to avoid the pulverization of silicon anode.;Spontaneously generated submicron buckles of film/polymer are also used as an optical mask to produce submicron periodic patterns with large filling ratio in contrast to generating only ∼100 nm edge submicron patterns in conventional near-field soft contact photolithography.;This thesis aims to deepen understanding of buckling behavior of thin films on compliant substrates and, in turn, to harness the fundamental properties of such instability for diverse applications.
机译:在工程中,屈曲是壁或柱在压缩状态下的机械不稳定性,通常是工程师试图避免的问题。在日常生活中,不同基材上的带扣(皱纹)无处不在-从人类皮肤到烂苹果,它们是常见现象。看起来,具有宏观波长的带扣在技术上没有用。然而,在过去的十年左右的时间里,由于软聚合物和有机硅材料的广泛普及,具有亚微米至微米级波长的微扣引起了越来越多的关注,因为它无需使用传统的光刻技术即可自发地生成有序的周期性微结构。本文研究了软质聚合物基底上硬质薄膜的屈曲行为,并探索了从光栅,光学掩模,能量收集到能量存储的各种应用。提出了一种激光扫描技术来检测微应变感应通过热机械载荷和周期性屈曲的微结构作为具有宽波长可调谐性的衍射光栅,该衍射光栅是由聚合物基体上的金属薄膜自发产生的。提出了一种力学策略,用于定量地使聚合物材料上的压电材料纳米带屈曲,包括合并后的你光刻图案化的表面附着点和转移印刷技术。精确设计的屈曲配置为具有极高水平可拉伸性的能量收集器提供了一条途径。;这种坚硬的薄膜/聚合物混合结构进一步应用于电化学领域,以规避硅阳极锂中电化学驱动的应力问题离子电池。结果表明,聚合物基底上的初始平面硅-纳米带阳极趋于弯曲以减轻锂化引起的应力,从而避免了硅阳极的粉化。;自发产生的薄膜/聚合物的亚微米弯曲也被用作光学材料掩模可产生具有大填充率的亚微米周期图案,而在常规近场软接触光刻中仅产生约100 nm边缘亚微米图案。本论文旨在加深对柔性基板上薄膜屈曲行为的理解,进而,以利用这种不稳定的基本属性来满足各种应用的需求。

著录项

  • 作者

    Ma, Teng.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Engineering Mechanical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 109 p.
  • 总页数 109
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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