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Electrical conductivity and porosity in stainless steel 316L scaffolds for electrochemical devices fabricated using selective laser sintering

机译:使用选择性激光烧结制造的电化学设备用不锈钢316L支架的电导率和孔隙率

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Battery electrode microstructures must be porous, to provide a large active surface area to facilitate fast charge transfer kinetics. In this work, we describe how a novel porous electrode scaffold, made from stainless steel 316L powder can be fabricated using selective laser sintering by proper selection of process parameters. Porosity, electrical conductivity and optical microscopy measurements were used to investigate the properties of fabricated samples. Our results show that a laser energy density between 1.50-2.00 J/mm(2) leads to a partial laser sintering mechanism where the powder particles are partially fused together, resulting in the fabrication of electrode scaffolds with 10% or higher porosity. The sample fabricated using 2.00 J/mm(2) energy density (60 W-1200 mm/s) exhibited a good electrical conductivity of 1.80 x 10(6) S/m with 15.61% of porosity. Moreover, we have observed the porosity changes across height for the sample fabricated at 60 W and 600 mm/s, 5.70% from base and increasing to 7.12% and 9.89% for each 2.5 mm height towards the top surface offering graded properties ideal for electrochemical devices, due to the changing thermal boundary conditions. These highly porous electrode scaffolds can be used as an electrode in electrochemical devices, potentially improving energy density and life cycle. (C) 2016 Elsevier Ltd. All rights reserved.
机译:电池电极的微结构必须是多孔的,以提供较大的有效表面积,以促进快速的电荷转移动力学。在这项工作中,我们描述了如何通过适当选择工艺参数,通过选择性激光烧结来制造由316L不锈钢粉末制成的新型多孔电极支架。孔隙率,电导率和光学显微镜测量用于研究制成样品的性能。我们的结果表明,激光能量密度在1.50-2.00 J / mm(2)之间会导致部分粉末烧结机制,其中粉末颗粒部分融合在一起,从而导致孔隙率达到10%或更高的电极支架的制造。使用2.00 J / mm(2)能量密度(60 W-1200 mm / s)制作的样品显示出1.80 x 10(6)S / m的良好电导率,孔隙率为15.61%。此外,我们已经观察到以60 W和600 mm / s的速度制造的样品的孔隙率在整个高度上的变化,从底部到表面的高度为5.70%,朝着顶部表面的每个2.5 mm的高度分别增加到7.12%和9.89%,提供了适合电化学的渐变性能器件,因为不断变化的热边界条件。这些高度多孔的电极支架可用作电化学装置中的电极,有可能改善能量密度和寿命周期。 (C)2016 Elsevier Ltd.保留所有权利。

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