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Bioinspired Surface Layer for the Cathode Material of High-Energy-Density Sodium-Ion Batteries

机译:高能量密度钠离子电池正极材料的生物启发表面层

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Cathode materials are usually active in the range of 2-4.3 V, but the decomposition of the electrolytic salt above 4 V versus Na+/Na is common. Arguably, the greatest concern is the formation of HF after the reaction of the salts with water molecules, which are present as an impurity in the electrolyte. This HF ceaselessly attacks the active materials and gradually causes the failure of the electrode via electric isolation of the active materials. In this study, a bioinspired -NaCaPO4 nanolayer is reported on a P2-type layered Na-2/3[Ni1/3Mn2/3]O2 cathode material. The coating layers successfully scavenge HF and H2O, and excellent capacity retention is achieved with the -NaCaPO4-coated Na-2/3[Ni1/3Mn2/3]O-2 electrode. This retention is possible because a less acidic environment is produced in the Na cells during prolonged cycling. The intrinsic stability of the coating layer also assists in delaying the exothermic decomposition reaction of the desodiated electrodes. Formation and reaction mechanisms are suggested for the coating layers responsible for the excellent electrode performance. The suggested technology is promising for use with cathode materials in rechargeable sodium batteries to mitigate the effects of acidic conditions in Na cells.
机译:阴极材料通常在2-4.3 V的范围内具有活性,但相对于Na + / Na,高于4 V的电解盐分解很常见。可以说,最令人担忧的是盐与水分子反应后形成的HF,这些盐作为杂质存在于电解质中。该HF不断地侵蚀活性材料,并通过活性材料的电绝缘逐渐导致电极失效。在这项研究中,据报道在P2型层状Na-2 / 3 [Ni1 / 3Mn2 / 3] O2阴极材料上具有生物启发性的-NaCaPO4纳米层。涂层成功清除了HF和H2O,并通过-NaCaPO4涂层的Na-2 / 3 [Ni1 / 3Mn2 / 3] O-2电极实现了出色的容量保持率。这种保留是可能的,因为在延长的循环过程中,Na细胞产生的酸性较低。涂层的固有稳定性还有助于延迟被脱氧的电极的放热分解反应。建议用于形成优异电极性能的涂层的形成和反应机理。所建议的技术有望与可充电钠电池中的阴极材料一起使用,以减轻Na电池中酸性条件的影响。

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