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3D printed cellular cathodes with hierarchical pores and high mass loading for Li-SeS2 battery

机译:3D印刷蜂窝阴极,具有分层孔和Li-SES2电池的高批量负载

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摘要

To satisfy the vast demand on high energy density for the next-generation electrochemical energy storage system, lithium selenium-sulfur (Li-SexSy) battery has drawn ever-growing interest with great advantages of low cost and promising capacity. However, its practical application with high areal mass loading of electrode manufacturing is still challenging. Here, we firstly print three-dimensional (3D) freestanding electrodes for Li-SeS2 batteries via direct ink writing based on the high-solid-content ink. The characteristic rheology properties of the ink possess excellent printability and enable the stable extrusion of 3D-printed cellular scaffold. In such a printed architecture, the low-cost commercial conducting ketjenblack (KB) with abundant pores is selected as the host material for selenium sulfide. For a well-controlled 3D-printed KB/SeS2 electrode, the areal SeS2 loading reaches 7.9 mg cm(-2). More importantly, with the hierarchical porosity engineering, the 3D-printed cellular KB/SeS2 cathode delivers a high initial discharge capacity of 9.5 mA h cm(-2) at 1.8 mA cm(-2) and high Coulombic efficiency of 96% over 80 cycles is achieved with such high mass loading. This 3D-printed LieSeS(2) battery electrode may guide more energy storage systems with ultrahigh capacity to the practical application. (c) 2020 Elsevier Ltd. All rights reserved.
机译:为了满足下一代电化学能量存储系统的高能量密度的巨大需求,亚硒 - 硫(Li-Sexsy)电池的兴趣较低,具有低成本和承诺的能力。然而,其具有高面积荷载电极制造的实际应用仍然具有挑战性。在这里,我们首先通过基于高固含量油墨的直接墨水写入来打印用于Li-SES2电池的三维(3D)独立电极。墨水的特征流变性质具有优异的印刷性,使得稳定的3D印刷蜂窝支架挤出。在这种印刷架构中,选择具有丰富孔的低成本商业导电Ketjenblack(Kb)作为硒硫化物的主体材料。对于受良好控制的3D印刷KB / SES2电极,AREAL SES2负荷达到7.9mg cm(-2)。更重要的是,利用等级孔隙率工程,3D印刷的蜂窝KB / SES2阴极在1.8 mA cm(-2)的高度为9.5 mA H cm(-2)的高初始放电容量,高于80倍的高水库效率为96%通过如此高的质量加载实现循环。该3D印刷的LiEses(2)电池电极可以引导具有超高容量的更高能量存储系统到实际应用。 (c)2020 elestvier有限公司保留所有权利。

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