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Additive Manufacturing of Sub-Micron to Sub-mm Metal Structures with Hollow AFM Cantilevers

机译:具有空心AFM悬臂的亚微米到亚毫米金属结构的增材制造

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摘要

We describe our force-controlled 3D printing method for layer-by-layer additive micromanufacturing (µAM) of metal microstructures. Hollow atomic force microscopy cantilevers are utilized to locally dispense metal ions in a standard 3-electrode electrochemical cell, enabling a confined electroplating reaction. The deflection feedback signal enables the live monitoring of the voxel growth and the consequent automation of the printing protocol in a layer-by-layer fashion for the fabrication of arbitrary-shaped geometries. In a second step, we investigated the effect of the free parameters (aperture diameter, applied pressure, and applied plating potential) on the voxel size, which enabled us to tune the voxel dimensions on-the-fly, as well as to produce objects spanning at least two orders of magnitude in each direction. As a concrete example, we printed two different replicas of Michelangelo’s David. Copper was used as metal, but the process can in principle be extended to all metals that are macroscopically electroplated in a standard way.
机译:我们描述了用于金属微结构的逐层附加微制造(µAM)的力控制3D打印方法。空心原子力显微镜悬臂用于在标准3电极电化学池中局部分配金属离子,从而实现受限的电镀反应。偏转反馈信号使得能够以逐层方式实时监视体素的生长并随之实现打印协议的自动化,以制造任意形状的几何形状。在第二步中,我们研究了自由参数(孔径,施加的压力和施加的电镀电位)对体素尺寸的影响,这使我们能够即时调整体素尺寸并生成对象在每个方向上至少跨越两个数量级。举一个具体的例子,我们印刷了米开朗基罗的大卫的两个不同的复制品。铜曾被用作金属,但是该方法原则上可以扩展到所有以标准方式宏观电镀的金属。

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