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Assembly of large-area, highly ordered, crack-free inverse opal films

机译:组装大面积,高度有序,无裂纹的反蛋白石薄膜

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摘要

Whereas considerable interest exists in self-assembly of well-ordered, porous “inverse opal” structures for optical, electronic, and (bio)chemical applications, uncontrolled defect formation has limited the scale-up and practicality of such approaches. Here we demonstrate a new method for assembling highly ordered, crack-free inverse opal films over a centimeter scale. Multilayered composite colloidal crystal films have been generated via evaporative deposition of polymeric colloidal spheres suspended within a hydrolyzed silicate sol-gel precursor solution. The coassembly of a sacrificial colloidal template with a matrix material avoids the need for liquid infiltration into the preassembled colloidal crystal and minimizes the associated cracking and inhomogeneities of the resulting inverse opal films. We discuss the underlying mechanisms that may account for the formation of large-area defect-free films, their unique preferential growth along the 〈110〉 direction and unusual fracture behavior. We demonstrate that this coassembly approach allows the fabrication of hierarchical structures not achievable by conventional methods, such as multilayered films and deposition onto patterned or curved surfaces. These robust SiO2 inverse opals can be transformed into various materials that retain the morphology and order of the original films, as exemplified by the reactive conversion into Si or TiO2 replicas. We show that colloidal coassembly is available for a range of organometallic sol-gel and polymer matrix precursors, and represents a simple, low-cost, scalable method for generating high-quality, chemically tailorable inverse opal films for a variety of applications.
机译:尽管人们对用于光学,电子和(生物)化学应用的有序,多孔的“反蛋白石”结构的自组装有相当大的兴趣,但是不受控制的缺陷形成限制了这种方法的规模化和实用性。在这里,我们演示了一种用于在厘米级上组装高度有序,无裂纹的反蛋白石薄膜的新方法。多层复合胶体晶体薄膜是通过将悬浮在水解硅酸盐溶胶-凝胶前体溶液中的聚合物胶体球蒸发沉积而产生的。牺牲胶体模板与基质材料的共组装避免了将液体渗透到预组装的胶体晶体中的需要,并且使所得反蛋白石膜的相关开裂和不均匀性最小化。我们讨论了可能解释大面积无缺陷薄膜形成,其沿〈110〉方向的独特优先生长以及异常断裂行为的潜在机理。我们证明了这种共组装方法允许制造常规方法无法实现的分层结构,例如多层膜和沉积到图案化或弯曲表面上。可以将这些坚固的SiO2反蛋白石转换成保留原始膜的形态和顺序的各种材料,例如反应性转化为Si或TiO2复制品。我们表明,胶体共组装可用于一系列有机金属溶胶-凝胶和聚合物基质前体,并且代表一种简单,低成本,可扩展的方法,可用于生成高质量,化学可定制的反蛋白石薄膜,以用于各种应用。

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