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3D Structures in Battery Materials

机译:电池材料中的3D结构

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Efficient lithium-ion batteries will play an important role within the development of future mo-bile and stationary applications such as portable microsystems, high power electric vehicles or high energy storage devices. All applications strongly require an improvement of the materials used in electrochemical cells in order to increase stability, power and energy density as well as cell lifetime. To challenge this demand, the development of future cell systems is mainly focused on the composi-tion of solid electrolytes as well as on powerful rechargeable lithium-ion intercalation electrodes consisting out of nano-composite materials. In this work, thin film electrodes based on lithium man-ganese oxide compounds were deposited by radiofrequency magnetron sputtering on steel and sili-con substrates. Within a new technical approach, UV-laser process technologies using a wavelength of 248 nm were applied in order to form three-dimensional cathode structures. Rapid laser annealing processes operating at 940 nm were performed to adjust an appropriate crystalline phase. Phase and structural analysis was performed using Raman spectroscopy, X-ray diffraction and electrochemical testing. The principle set-up of a three-dimensional all-solid state cell was shown by sputtering of lithium vanadium silicon oxide electrolyte and aluminium anode material on top of the lithium manganese oxide 3D structures.
机译:高效的锂离子电池将在未来的移动和固定应用(例如便携式微系统,大功率电动汽车或高能量存储设备)的开发中发挥重要作用。所有应用都强烈要求对电化学电池中使用的材料进行改进,以增加稳定性,功率和能量密度以及电池寿命。为了挑战这一需求,未来电池系统的开发主要集中在固体电解质的组成以及由纳米复合材料组成的功能强大的可再充电锂离子嵌入电极上。在这项工作中,通过射频磁控溅射将基于锂锰氧化物化合物的薄膜电极沉积在钢和硅衬底上。在一种新的技术方法中,为了形成三维阴极结构,应用了使用248 nm波长的UV激光工艺技术。进行了在940 nm处进行的快速激光退火工艺,以调节适当的晶相。使用拉曼光谱,X射线衍射和电化学测试进行相和结构分析。通过在锂锰氧化物3D结构的顶部溅射锂钒硅氧化物电解质和铝阳极材料来显示三维全固态电池的原理设置。

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