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Surface functionalization of porous nanostructured metal oxide thin films fabricated by glancing angle deposition

机译:通过掠角沉积制备的多孔纳米结构金属氧化物薄膜的表面功能化

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摘要

We report the application of solution- and vapor-phase siloxane-based methods for tailoring the surface chemistry/properties of highly porous, nanostructured thin films fabricated using glancing angle deposition (GLAD). The GLAD technique produces high surface area films consisting of isolated columns and provides complete control over the film/column morphology. In the present study, the chemical tunability of a variety of metal oxide GLAD films was investigated using solution- based and vapor-phase surface functionalization methodologies. The surface properties and structures of the treated and untreated films were investigated using scanning electron microscopy (SEM), advancing aqueous contact angle measurements, cyclic voltammetry, and X-ray photoelectron spectroscopy (XPS). Results indicate that the surface chemistry of metal oxide GLAD films could be tailored by either method; however, chemical reactivity depends strongly on the metal oxide film material. Chemical tunability is demonstrated through the covalent tethering of numerous chemical moieties onto the exposed and interior surfaces of metal oxide GLAD films of varied structural motifs. Through careful choice of surface modifier, the present derivatization methods afford a full range of aqueous wettability from hydrophilic to superhydrophobic without compromising film structure. These functionalized, nanoconstructed films demonstrate a high degree of tunability over both structural and surface properties, making them well suited for diverse applications such as optical filters or sensors.
机译:我们报告了基于溶液和气相硅氧烷的方法的应用,这些方法用于定制使用掠射角沉积(GLAD)制造的高度多孔的纳米结构薄膜的表面化学/性质。 GLAD技术可生产由隔离柱组成的高表面积膜,并提供对膜/柱形态的完全控制。在本研究中,使用溶液基和气相表面官能化方法研究了多种金属氧化物GLAD膜的化学可调性。使用扫描电子显微镜(SEM),先进的水接触角测量,循环伏安法和X射线光电子能谱(XPS)研究已处理和未处理薄膜的表面性质和结构。结果表明,两种方法均可调整金属氧化物GLAD膜的表面化学性质。但是,化学反应性在很大程度上取决于金属氧化物膜材料。通过将许多化学部分共价束缚在具有不同结构基序的金属氧化物GLAD膜的暴露表面和内表面上,可以证明化学可调谐性。通过仔细选择表面改性剂,本发明的衍生化方法在不损害膜结构的情况下提供了从亲水性到超疏水性的​​全范围的水润湿性。这些功能化的纳米构造薄膜在结构和表面特性上均显示出高度的可调谐性,使其非常适合于各种应用,例如滤光片或传感器。

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