School of Materials Science and Engineering , Central South University , Changsha , Hunan 410083 , China.
Hunan Zhengyuan Institute for Energy Storage Materials and Devices , Changsha , Hunan 410083 , China.
ACS Appl Mater Interfaces. 2018 Apr 25;10(16):13625-13634. doi: 10.1021/acsami.8b02553. Epub 2018 Apr 13.
A LiNiMnO cathode material with high surface orientation was prepared via a complexing reaction coupled with the elevated-temperature solid-state method. First, a bimetal-organic framework containing Ni and Mn ions was synthesized via a self-assembly route using pyromellitic acid (PMA) as a dispersant and complexing agent. This step was followed by calcination with lithium acetate using PMA as a structure-directing agent. The resulting LiNiMnO (M-LNMO) cathode material was investigated using X-ray diffraction, transmission and scanning electron microscopies, X-ray photoelectron spectroscopy, energy-dispersive X-ray spectroscopy, cyclic voltammetry, electrochemical impedance spectroscopy, and charge/discharge tests. For comparison, LiNiMnO samples were prepared by coprecipitation and the solid-phase method under the same conditions. M-LNMO was highly crystalline with low impurity, uniform grain size, and a preferred orientation in the (111) and (110) planes. Owing to these advantages, the M-LNMO cathode material exhibited overwhelmingly high cyclic stability and rate capability and M-LNMO delivered a capacity of 145 mAh g at a discharge rate of 0.1C and a discharge capacity retention of 86.6% at 5C after 1000 cycles. Even at an extremely high discharge rate (10C), the specific capacity was 112.7 mAh g, and 78.7% of its initial capacity was retained over 500 cycles. The superior electrochemical performance, particularly during a low-rate operation, was conferred by improved crystallinity and the crystal orientation of the particles.
一种具有高表面取向的 LiNiMnO 正极材料,通过配位反应与高温固相法制备。首先,采用均苯四甲酸(PMA)作为分散剂和配位剂,通过自组装路线合成了含有 Ni 和 Mn 离子的双金属有机骨架。然后,用乙酸锂在 PMA 作为结构导向剂的条件下进行煅烧。使用 X 射线衍射、透射和扫描电子显微镜、X 射线光电子能谱、能量色散 X 射线光谱、循环伏安法、电化学阻抗谱和充放电测试对所得 LiNiMnO(M-LNMO)正极材料进行了研究。为了比较,在相同条件下通过共沉淀和固相法制备了 LiNiMnO 样品。M-LNMO 具有高结晶度、低杂质、均匀的晶粒尺寸和(111)和(110)面的择优取向。由于这些优点,M-LNMO 正极材料表现出极高的循环稳定性和倍率性能,在 0.1C 的放电率下,M-LNMO 的容量为 145mAh g,在 5C 下经过 1000 次循环后,放电容量保持率为 86.6%。即使在极高的放电速率(10C)下,比容量也为 112.7mAh g,经过 500 次循环后,其初始容量保留了 78.7%。优异的电化学性能,特别是在低倍率下的性能,归因于提高了结晶度和颗粒的晶体取向。