首页> 美国卫生研究院文献>Wiley-Blackwell Online Open >Iron‐Based Electrodes Meet Water‐Based Preparation Fluorine‐Free Electrolyte and Binder: A Chance for More Sustainable Lithium‐Ion Batteries?
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Iron‐Based Electrodes Meet Water‐Based Preparation Fluorine‐Free Electrolyte and Binder: A Chance for More Sustainable Lithium‐Ion Batteries?

机译:铁基电极满足水基制备无氟电解质和粘合剂的要求:是否有机会提供更具可持续性的锂离子电池?

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摘要

Environmentally friendly and cost‐effective Li‐ion cells are fabricated with abundant, non‐toxic LiFePO4 cathodes and iron oxide anodes. A water‐soluble alginate binder is used to coat both electrodes to reduce the environmental footprint. The critical reactivity of LiPF6‐based electrolytes toward possible traces of H2O in water‐processed electrodes is overcome by using a lithium bis(oxalato)borate (LiBOB) salt. The absence of fluorine in the electrolyte and binder is a cornerstone for improved cell chemistry and results in stable battery operation. A dedicated approach to exploit conversion‐type anodes more effectively is also disclosed. The issue of large voltage hysteresis upon conversion/de‐conversion is circumvented by operating iron oxide in a deeply lithiated Fe/Li2O form. Li‐ion cells with energy efficiencies of up to 92 % are demonstrated if LiFePO4 is cycled versus such anodes prepared through a pre‐lithiation procedure. These cells show an average energy efficiency of approximately 90.66 % and a mean Coulombic efficiency of approximately 99.65 % over 320 cycles at current densities of 0.1, 0.2 and 0.3 mA cm−2. They retain nearly 100 % of their initial discharge capacity and provide an unmatched operation potential of approximately 2.85 V for this combination of active materials. No occurrence of Li plating was detected in three‐electrode cells at charging rates of approximately 5C. Excellent rate capabilities of up to approximately 30C are achieved thanks to the exploitation of size effects from the small Fe nanoparticles and their reactive boundaries.
机译:环保且具有成本效益的锂离子电池由大量无毒的LiFePO4阴极和氧化铁阳极制成。水溶性藻酸盐粘合剂用于涂覆两个电极,以减少环境足迹。通过使用双(草酸硼酸)硼酸锂(LiBOB)盐可以克服基于LiPF6的电解质对水处理电极中可能存在的痕量H2O的关键反应性。电解质和粘合剂中不含氟是改善电池化学性能的基础,并可以稳定电池运行。还公开了一种更有效地利用转化型阳极的专用方法。通过以深锂化的Fe / Li2O形式操作氧化铁可避免转换/反转换时出现大电压滞后的问题。与通过预锂化程序制备的此类阳极相比,如果循环使用LiFePO4,则表明锂离子电池的能量效率高达92%。在电流密度分别为0.1、0.2和0.3 mA·cm −2 的320个循环中,这些电池的平均能量效率约为90.66%,库仑效率约为99.65%。它们保留了其初始放电容量的近100%,并为这种活性材料组合提供了约2.85 operationV的无与伦比的工作电势。在约5C的充电速率下,在三电极电池中未检测到Li镀层的发生。由于利用了小铁纳米颗粒及其反应性边界的尺寸效应,因此可实现高达约30C的出色速率能力。

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