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Three-dimensional microarchitected materials and devices using nanoparticle assembly by pointwise spatial printing

机译:通过点状空间印刷使用纳米粒子组装的三维微架构材料和设备

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摘要

Three-dimensional (3D) hierarchical materials are important to a wide range of emerging technological applications. We report a method to synthesize complex 3D microengineered materials, such as microlattices, with nearly fully dense truss elements with a minimum diameter of approximately 20 μm and having high aspect ratios (up to 20:1) without using any templating or supporting materials. By varying the postprocessing conditions, we have also introduced an additional control over the internal porosity of the truss elements to demonstrate a hierarchical porous structure with an overall void size and feature size control of over five orders of magnitudes in length scale. The method uses direct printing of nanoparticle dispersions using the Aerosol Jet technology in 3D space without templating or supporting materials followed by binder removal and sintering. In addition to 3D microlattices, we have also demonstrated directly printed stretchable interconnects, spirals, and pillars. This assembly method could be implemented by a variety of microdroplet generation methods for fast and large-scale fabrication of the hierarchical materials for applications in tissue engineering, ultralight or multifunctional materials, microfluidics, and micro-optoelectronics.
机译:三维(3D)分层材料对于各种新兴技术应用都很重要。我们报告了一种合成复杂的3D微工程材料(例如微晶格)的方法,该材料具有几乎完全密实的桁架元件,其最小直径约为20μm,并且具有高纵横比(高达20:1),而无需使用任何模板或支撑材料。通过改变后处理条件,我们还引入了对桁架单元内部孔隙率的附加控制,以演示具有整体空隙尺寸和特征尺寸控制在长度尺度上超过五个数量级的分层多孔结构。该方法使用Aerosol Jet技术在3D空间中直接打印纳米粒子分散体,而无需模板或支撑材料,然后去除粘合剂和烧结。除了3D微晶格,我们还演示了直接打印的可拉伸互连,螺旋和柱状体。可以通过各种微滴生成方法来实现这种组装方法,以快速,大规模地制造用于组织工程,超轻或多功能材料,微流体和微光电子学中的分层材料。

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