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Binder-free and carbon-free nanoparticle batteries: A method for nanoparticle electrodes without polymeric binders or carbon black

机译:无粘合剂和无碳的纳米颗粒电池:一种无需聚合物粘合剂或炭黑的纳米颗粒电极的方法

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摘要

In this work, we have developed a new fabrication method for nanoparticle (NP) assemblies for Li-ion battery electrodes that require no additional support or conductive materials such as polymeric binders or carbon black. By eliminating these additives, we are able to improve the battery capacity/weight ratio. The NP film is formed by using electrophoretic deposition (EPD) of colloidally synthesized, monodisperse cobalt NPs that are transformed through the nanoscale Kirkendall effect into hollow Co _3O _4. EPD forms a network of NPs that are mechanically very robust and electrically connected, enabling them to act as the Li-ion battery anode. The morphology change through cycles indicates stable 5-10 nm NPs form after the first lithiation remained throughout the cycling process. This NP-film battery made without binders and conductive additives shows high gravimetric (>830 mAh/g) and volumetric capacities (>2100 mAh/cm ~3) even after 50 cycles. Because similar films made from drop-casting do not perform well under equal conditions, EPD is seen as the critical step to create good contacts between the particles and electrodes resulting in this significant improvement in battery electrode assembly. This is a promising system for colloidal nanoparticles and a template for investigating the mechanism of lithiation and delithiation of NPs.
机译:在这项工作中,我们为锂离子电池电极的纳米粒子(NP)组件开发了一种新的制造方法,该方法不需要额外的支撑物或导电材料,例如聚合物粘合剂或炭黑。通过消除这些添加剂,我们能够提高电池容量/重量比。 NP膜是通过胶体合成的单分散钴NP的电泳沉积(EPD)形成的,该NP通过纳米柯肯德尔效应转化为空心Co _3O _4。 EPD形成了NP的网络,这些NP在机械上非常坚固并且电气连接,使它们可以用作锂离子电池的阳极。整个循环的形态变化表明,在整个循环过程中保留的第一次锂化之后,形成了稳定的5-10 nm NP。这款不含粘合剂和导电添加剂的NP薄膜电池即使经过50次循环,仍具有很高的重量(> 830 mAh / g)和体积容量(> 2100 mAh / cm〜3)。由于由滴铸法制成的类似薄膜在相同条件下的性能不佳,因此EPD被视为在颗粒与电极之间建立良好接触的关键步骤,从而导致电池电极组件的显着改善。这是用于胶体纳米颗粒的有前途的系统和用于研究NP的锂化和脱锂机理的模板。

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