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Fabrication of Self-Cleaning, Reusable Titania Templates for Nanometer and Micrometer Scale Protein Patterning

机译:用于纳米和微米级蛋白质图案化的自清洁,可重复使用的二氧化钛模板的制备

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摘要

The photocatalytic self-cleaning characteristics of titania facilitate the fabrication of re-useable templates for protein nanopatterning. Titania nanostructures were fabricated over square centimeter areas by interferometric lithography (IL) and nanoimprint lithography (NIL). Using a Lloyd’s mirror two-beam interferometer, self-assembled monolayers of alkylphosphonates adsorbed on the native oxide of a Ti film were patterned by photocatalytic nanolithography. In regions exposed to a maximum in the interferogram, the monolayer was removed by photocatalytic oxidation. In regions exposed to an intensity minimum, the monolayer remained intact. After exposure, the sample was etched in piranha solution to yield Ti nanostructures with widths as small as 30 nm. NIL was performed by using a silicon stamp to imprint a spin-cast film of titanium dioxide resin; after calcination and reactive ion etching, TiO2 nanopillars were formed. For both fabrication techniques, subsequent adsorption of an oligo(ethylene glycol) functionalized trichlorosilane yielded an entirely passive, protein-resistant surface. Near-UV exposure caused removal of this protein-resistant film from the titania regions by photocatalytic degradation, leaving the passivating silane film intact on the silicon dioxide regions. Proteins labeled with fluorescent dyes were adsorbed to the titanium dioxide regions, yielding nanopatterns with bright fluorescence. Subsequent near-UV irradiation of the samples removed the protein from the titanium dioxide nanostructures by photocatalytic degradation facilitating the adsorption of a different protein. The process was repeated multiple times. These simple methods appear to yield durable, re-useable samples that may be of value to laboratories that require nanostructured biological interfaces but do not have access to the infrastructure required for nanofabrication.
机译:二氧化钛的光催化自清洁特性有助于蛋白质纳米图案的可重复使用模板的制备。通过干涉光刻(IL)和纳米压印光刻(NIL)在平方厘米的面积上制造了二氧化钛纳米结构。使用劳埃德反射镜两光束干涉仪,通过光催化纳米光刻技术将吸附在Ti膜天然氧化物上的烷基膦酸酯的自组装单层图案化。在干涉图中暴露于最大值的区域中,通过光催化氧化去除了单层。在暴露于最小强度的区域中,单层保持完整。暴露后,将样品在食人鱼溶液中蚀刻,以产生宽度小至30 nm的Ti纳米结构。通过使用硅印模压印二氧化钛树脂的旋转浇铸膜来进行NIL;经过煅烧和反应离子刻蚀后,形成了TiO2纳米柱。对于这两种制造技术,随后对低聚(乙二醇)官能化的三氯硅烷的吸附都产生了完全被动的,耐蛋白质的表面。接近紫外线的照射会导致该蛋白抗性膜通过光催化降解而从二氧化钛区域去除,从而使钝化硅烷膜完整保留在二氧化硅区域上。用荧光染料标记的蛋白质被吸附到二氧化钛区域,产生具有明亮荧光的纳米图案。随后样品的近紫外线照射通过光催化降解从二氧化钛纳米结构中去除了蛋白质,从而促进了另一种蛋白质的吸附。将该过程重复多次。这些简单的方法似乎可以产生耐用,可重复使用的样品,这对于需要纳米结构生物界面但无法使用纳米加工所需基础设施的实验室可能具有价值。

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