首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Three-dimensional magnetite replicas of pollen particles with tailorable and predictable multimodal adhesion
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Three-dimensional magnetite replicas of pollen particles with tailorable and predictable multimodal adhesion

机译:花粉粒子的三维磁铁矿复制品,具有可定制和可预测的多峰粘附

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The ability to synthesize large quantities of 3-D microparticles with tunable adhesion is critically important for a variety of mature and emerging technologies, such as for paints, inks, chemical/water purification, drug delivery, cell manipulation, and assembly of hierarchical structures. Nature provides impressive examples of sustainable, complex-shaped microparticles with chemistries and structures tailored for adhesion, among the most common of which are pollen grains. We have recently used a surface sol-gel (SSG) coating process to generate iron oxide replicas of sunflower pollen grains. While these replicas exhibited multimodal adhesion, the tailorability and predictability of such adhesion was not examined. In the present paper, the layer-by-layer SSG process has been used to carefully adjust the amount of iron oxide deposited onto the pollen grains. Controlled-atmosphere thermal treatments then yielded freestanding replicas with tailored hematite (alpha-Fe2O3) or magnetite (Fe3O4) contents. The 3-D morphology of the starting pollen was well-preserved in the all-oxide replicas, and the shrinkage upon firing could be controlled by increasing the number of Fe-O-bearing layers deposited on the pollen. While the short-range van der Waals (VDW) adhesion of the oxide replicas to a variety of surfaces was lower than for the larger starting pollen grains, this difference was not due to shrinkage of the replicas. Analyses with a simple Hamaker model indicated that VDW adhesion of the oxide replicas was governed by the contact of oxide nanocrystals located on the spine tips (as opposed to the curvature of the entire spine tip). The longer-range attraction to a magnetic substrate could be tailored independently of the short-range VDW attraction by controlling the magnetite content of the replicas, and a simple and effective model for describing such magnetic attraction was developed. This work demonstrates that sustainable pollen microparticles can be converted into high-fidelity 3-D oxide replicas with predictable and tailorable multimodal adhesion.
机译:合成具有可调粘合力的大量3-D微粒的能力对于各种成熟和新兴技术至关重要,例如用于油漆,油墨,化学/水净化,药物输送,细胞处理以及分层结构的组装。大自然为可持续发展,形状复杂的微粒提供了令人印象深刻的实例,这些微粒具有专门为粘附而设计的化学和结构,其中最常见的是花粉粒。我们最近使用了表面溶胶-凝胶(SSG)涂层工艺来生成向日葵花粉颗粒的氧化铁复制品。尽管这些复制品表现出多峰粘附,但未检查此类粘附的可定制性和可预测性。在本文中,已经使用了逐层SSG工艺来仔细调节沉积在花粉颗粒上的氧化铁的量。然后,在大气受控条件下进行热处理,得到具有定制赤铁矿(α-Fe2O3)或磁铁矿(Fe3O4)含量的独立式复制品。起始花粉的3D形态在所有氧化物仿品中均保存良好,并且通过增加沉积在花粉上的含Fe-O的层数可以控制焙烧时的收缩率。尽管氧化物复制品对各种表面的短程范德华力(VDW)附着力比较大的初始花粉晶粒低,但这种差异并非由于复制品的收缩。用简单的Hamaker模型进行的分析表明,氧化物复制品的VDW附着力受位于脊柱顶端的氧化物纳米晶体的接触(与整个脊柱顶端的曲率相反)控制。通过控制复制品的磁铁矿含量,可以独立于短距离VDW吸引量来定制对磁性衬底的长距离吸引量,并开发了一种简单有效的模型来描述这种磁吸引量。这项工作表明可持续的花粉微粒可以转换为具有可预测和可定制的多峰粘附的高保真3D氧化物复制品。

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