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NEW HIGH ENERGY AND POWER CHEMISTRIES IN 3D MESOSTRUCTURED ELECTRODES FOR RECHARGEABLE BATTERIES

机译:用于可充电电池的3D Mesosostuction电极的新型高能和功率化学

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Through mesoscale design of a 3D current collector, high power density and high energy density primary and secondary (rechargeable) batteries were fabricated. At the most fundamental level, mesostructuring enables optimization of the trade-off between energy and power density in energy storage systems due to unavoidable ohmic and other losses that occur during charge or discharge. Of course, it is at fast charge and discharge, where these effects are most important. By efficient design of the ion and electron transport pathways, we and others have shown it is possible to significantly improve the power-energy relationship. We have found a particularly effective way to provide these pathways is to use a colloidal-based template to form a mesostructured 3D current collector. The electrochemically active material is then deposited on this current collector. Using this approach, Li-ion batteries which could be discharged at up to 300C with 75% capacity retention were formed. The combination of a high surface area and short solid-state diffusion lengths offers a number of unique opportunities for both high energy and high power chemistries. As examples, we have formed conventional form-factor and microbattery high power cells based on lithiated manganese oxide and other oxide-based cathodes, and carbon, NiSn, iron oxide, and silicon-based anodes.
机译:通过Messcale设计3D集电器,制造高功率密度和高能量密度初级和次级(可充电)电池。在最基本的水平,介思结构使能量存储系统中的能量和功率密度之间的折衷能量和电荷或放电期间发生的其他损耗。当然,它处于快速充电和放电,其中这些效果最重要。通过高效地设计离子和电子传输途径,我们和其他人表明可以显着提高电力关系。我们已经找到了一种特别有效的方法来提供这些途径是使用基于胶体的模板来形成型胶囊结构3D集电器。然后将电化学活性材料沉积在该集电器上。使用这种方法,形成锂离子电池,可以在高达300℃下放电,具有75%容量保持。高表面积和短固态扩散长度的组合为高能和高功率化学品提供了许多独特的机会。作为实例,我们基于锂化的氧化锂和基于氧化物基阴极和碳,NISN,氧化铁和硅基阳极形成常规的形状因子和微滴建性高功率。

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