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Direct Laser Writing of Low-Density Interdigitated Foams for Plasma Drive Shaping

机译:低密度叉指泡沫的直接激光写入,用于等离子驱动成型

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Monolithic porous bulk materials have many promising applications ranging from energy storage and catalysis to high energy density physics. High resolution additive manufacturing techniques, such as direct laser writing via two photon polymerization (DLW-TPP), now enable the fabrication of highly porous microlattices with deterministic morphology control. In this work, DLW-TPP is used to print millimeter-sized foam reservoirs (down to 0.06 g cm(-3)) with tailored density-gradient profiles, where density is varied by over an order of magnitude (for instance from 0.6 to 0.06 g cm(-3)) along a length of < 100 mu m. Taking full advantage of this technology, however, is a multiscale materials design problem that requires detailed understanding of how the different length scales, from the molecular level to the macroscopic dimensions, affect each other. The design of these 3D-printed foams is based on the brickwork arrangement of 100 x 100 x 16 mu m(3) log-pile blocks constructed from sub-micrometer scale features. A block-to-block interdigitated stitching strategy is introduced for obtaining high density uniformity at all length scales. Finally, these materials are used to shape plasma-piston drives during ramp-compression of targets under high energy density conditions created at the OMEGA Laser Facility.
机译:整体多孔本体材料具有从储能和催化到高能量密度物理学的许多有前途的应用。高分辨率增材制造技术,例如通过两次光子聚合(DLW-TPP)进行的直接激光写入,现在使制造具有确定性形态控制的高多孔微晶格成为可能。在这项工作中,DLW-TPP用于打印具有定制的密度梯度曲线的毫米大小的泡沫容器(低至0.06 g cm(-3)),其中密度变化一个数量级(例如,从0.6沿着<100微米的长度为0.06 g cm(-3))。然而,要充分利用这项技术,便是一个多尺度材料设计问题,需要详细了解从分子水平到宏观尺度的不同长度尺度如何相互影响。这些3D打印泡沫的设计基于由亚微米尺度特征构成的100 x 100 x 16微米(3)圆木桩块的砌体布置。引入了块对块交叉指接缝合策略,以在所有长度尺度上获得高密度均匀性。最后,在OMEGA激光设备产生的高能量密度条件下,在目标斜压压缩过程中,这些材料可用于塑造等离子活塞驱动器。

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