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Study of Water-Based Lithium Titanate Electrode Processing: The Role of pH and Binder Molecular Structure

机译:水基钛酸锂电极加工的研究:pH和粘合剂分子结构的作用

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This work elucidates the manufacturing of lithium titanate (Li 4 Ti 5 O 12 , LTO) electrodes via the aqueous process using sodium carboxymethylcellulose (CMC), guar gum (GG) or pectin as binders. To avoid aluminum current collector dissolution due to the rising slurries’ pH, phosphoric acid (PA) is used as a pH-modifier. The electrodes are characterized in terms of morphology, adhesion strength and electrochemical performance. In the absence of phosphoric acid, hydrogen evolution occurs upon coating the slurry onto the aluminum substrate, resulting in the formation of cavities in the coated electrode, as well as poor cohesion on the current collector itself. Consequently, the electrochemical performance of the coated electrodes is also improved by the addition of PA in the slurries. At a 5C rate, CMC/PA-based electrodes delivered 144 mAh·g ?1 , while PA-free electrodes reached only 124 mAh·g ?1 . When GG and pectin are used as binders, the adhesion of the coated layers to the current collector is reduced; however, the electrodes show comparable, if not slightly better, electrochemical performance than those based on CMC. Full lithium-ion cells, utilizing CMC/PA-made Li[Ni 0.33 Mn 0.33 Co 0.33 ]O 2 (NMC) cathodes and LTO anodes offer a stable discharge capacity of ~120 mAh·g ?1 (NMC) with high coulombic efficiencies.
机译:这项工作阐明了使用羧甲基纤维素钠(CMC),瓜尔豆胶(GG)或果胶作为粘合剂通过水性工艺制造钛酸锂(Li 4 Ti 5 O 12,LTO)电极的过程。为避免铝集电器因浆料pH升高而溶解,磷酸(PA)被用作pH调节剂。电极的特征在于形态,粘附强度和电化学性能。在不存在磷酸的情况下,在将浆料涂覆到铝基板上时会发生氢逸出,导致在涂覆的电极中形成空腔,并且在集电器上的内聚力很差。因此,通过在浆料中添加PA,也改善了涂覆电极的电化学性能。在5C的速率下,基于CMC / PA的电极的输出功率为144 mAh·g?1,而无PA的电极仅为124 mAh·g?1。当使用GG和果胶作为粘合剂时,涂层对集电器的粘附性降低;但是,电极的电化学性能与基于CMC的电化学性能相当,甚至略好。使用CMC / PA制造的Li [Ni 0.33 Mn 0.33 Co 0.33] O 2(NMC)阴极和LTO阳极的完整锂离子电池可提供约120 mAh·g?1(NMC)的稳定放电容量,并具有高库仑效率。

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