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Isolated Mesoporous Microstructures Prepared by Stress Localization-Induced Crack Manipulation

机译:应力局部化引起的裂纹操纵制备的隔离介孔微结构

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Cracks observed in brittle materials are mostly regarded as defects or failures. However, they can be a valuable tool when implemented in a controlled way. Here, we introduce a strategy to control the crack propagation of mesoporous micropatterns (prisms and pyramids), which leads to the isolation of well-defined microstructures. Mesoporous micropatterns were fabricated by the soft imprinting technique with wet TiO2 nanoparticle (NP) pastes, followed by sintering to remove organic components. Since the volume of the paste significantly shrinks during the sintering step, stress is localized at the edge of micropatterns, in good agreement with finite element method simulations, creating well-defined cracks and their propagation. It was demonstrated that the degree of stress localization is determined by the thickness of residual layers, NP size, and heating rate. After controlled crack propagation and delamination of microparticles from the substrates, mesoporous microwires and microparticles were successfully produced and functionalized from the isolated mesoporous prisms and pyramids. The method proposed in this study for controlled crack manipulation and delamination opens a door for straightforward and economical fabrication of well-defined mesoporous microparticles.
机译:在脆性材料中观察到的裂纹通常被认为是缺陷或故障。但是,当以受控方式实施时,它们可能是有价值的工具。在这里,我们介绍了一种控制中孔微图案(棱镜和金字塔)的裂纹扩展的策略,这导致了定义明确的微结构的隔离。介孔微图案是通过使用湿式TiO2纳米颗粒(NP)糊剂的软压印技术制造的,然后进行烧结以去除有机成分。由于浆料的体积在烧结步骤中会明显收缩,因此应力会分布在微图案的边缘,这与有限元方法模拟非常吻合,从而产生清晰的裂纹及其扩展。结果表明,应力局部化的程度取决于残余层的厚度,NP尺寸和加热速率。在受控的裂纹扩展和微粒从基底上的分层之后,成功地生产了介孔微丝和微粒,并从孤立的介孔棱柱和棱锥上对其进行了功能化。这项研究中提出的控制裂纹的控制和分层的方法为定义明确的介孔微粒的直接,经济的制造方法打开了一扇门。

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