Jiahao Zhang, Chao Ye, Yao Liao, Caihong Sun, Y. Zeng, Jing Xiao, Zhi Chen, Wei Liu, Xiukang Yang, P. Gao
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引用次数: 1
摘要
最近,以生态友好型有机材料为电极的有机钠离子电池(OSIBs)备受关注。然而,有机电极的固有缺点,如电导率低、稳定性差、在电解质中的溶解度高,通常限制了osib的实际应用。本文提出了[5,10,15,20 -四硫基卟啉]M (II) (MTTP, M=2H, Ni)作为有机钠电池的新型电极材料。在卟啉分子设计中加入噻吩官能团和镍(Ⅱ)离子,使得卟啉在钠存储系统中具有稳定而优异的电化学性能。得益于多个电荷存储位点和双极特性,NiTTP阳极在电流密度为25 mA g−1时具有434 mAh g−1的可逆容量。采用NiTTP作为阴极材料,获得了良好的长期循环稳定性和较高的平均电压。在对称电池中,NiTTP作为正极和负极材料,实现了2.3 V的高平均电压和93 Wh kg−1的实际能量密度。这些结果表明,噻吩基卟啉衍生物有望成为绿色稳定储能的长效有机钠离子电池电极材料。
Thiophene-functionalized porphyrin complexes as high performance electrodes for sodium ion batteries
Organic sodium-ion batteries (OSIBs) using eco-friendly organic materials as electrodes have recently received much attention. However, the practical applications of OSIBs are generally limited by the inherent disadvantages of organic electrodes, such as their low conductivity, poor stability, and high solubility in electrolytes. Herein, we presented [5, 10, 15, 20-tetrathienylporphinato] M (II) (MTTP, M=2H, Ni) as new electrode materials in sodium-organic batteries. The incorporation of thiophene functionalized groups and nickel (Ⅱ) ion in the molecular design of porphyrins enabled stable and excellent electrochemical performance in sodium storage systems. Benefiting from multiple charge storage sites and bipolar characteristics, the NiTTP anode has a reversible capacity of 434 mAh g−1 at a current density of 25 mA g−1. An excellent long-term cycling stability and high average voltage were obtained when NiTTP was used as a cathode. In a symmetrical battery, where NiTTP was used as both cathode and anode materials, a high average voltage of 2.3 V and a practical energy density of 93 Wh kg−1 was achieved. These results suggest that the thiophene-based porphyrin derivatives would be promising electrode materials for long-term organic sodium ion batteries for green and stable energy storage.