Huang Jinghao, Li Shi, Wang You, Kim Eric Youngsam, Yang Zhenzhen, Chen Dongchang, Cheng Lei, Luo Chao
Department of Chemistry and Biochemistry, George Mason University, Fairfax, VA, 22030, USA.
Material Science Division, Argonne National Laboratory, Lemont, Illinois, 60439, USA.
Small. 2024 Apr;20(14):e2308113. doi: 10.1002/smll.202308113. Epub 2023 Nov 16.
Developing low-voltage carboxylate anode materials is critical for achieving low-cost, high-performance, and sustainable Na-ion batteries (NIBs). However, the structure design rationale and structure-performance correlation for organic carboxylates in NIBs remains elusive. Herein, the spatial effect on the performance of carboxylate anode materials is studied by introducing heteroatoms in the conjugation structure and manipulating the positions of carboxylate groups in the aromatic rings. Planar and twisted organic carboxylates are designed and synthesized to gain insight into the impact of geometric structures to the electrochemical performance of carboxylate anodes in NIBs. Among the carboxylates, disodium 2,2'-bipyridine-5,5'-dicarboxylate (2255-Na) with a planar structure outperforms the others in terms of highest specific capacity (210 mAh g), longest cycle life (2000 cycles), and best rate capability (up to 5 A g). The cyclic stability and redox mechanism of 2255-Na in NIBs are exploited by various characterization techniques. Moreover, high-temperature (up to 100 °C) and all-organic batteries based on a 2255-Na anode, a polyaniline (PANI) cathode, and an ether-based electrolyte are achieved and exhibited exceptional electrochemical performance. Therefore, this work demonstrates that designing organic carboxylates with extended planar conjugation structures is an effective strategy to achieve high-performance and sustainable NIBs.
开发低压羧酸盐负极材料对于实现低成本、高性能和可持续的钠离子电池(NIBs)至关重要。然而,NIBs中有机羧酸盐的结构设计原理以及结构与性能的相关性仍然难以捉摸。在此,通过在共轭结构中引入杂原子并控制芳香环中羧酸盐基团的位置,研究了空间效应对羧酸盐负极材料性能的影响。设计并合成了平面和扭曲的有机羧酸盐,以深入了解几何结构对NIBs中羧酸盐负极电化学性能的影响。在这些羧酸盐中,具有平面结构的2,2'-联吡啶-5,5'-二羧酸钠(2255-Na)在最高比容量(210 mAh g)、最长循环寿命(2000次循环)和最佳倍率性能(高达5 A g)方面表现优于其他材料。通过各种表征技术研究了2255-Na在NIBs中的循环稳定性和氧化还原机理。此外,基于2255-Na负极、聚苯胺(PANI)正极和醚基电解质的高温(高达100°C)全有机电池得以实现,并展现出优异的电化学性能。因此,这项工作表明,设计具有扩展平面共轭结构的有机羧酸盐是实现高性能和可持续NIBs的有效策略。