Facilitating rapid charge transfer in electrode materials necessitates the optimization of their ionic transport properties. Currently, only a limited number of Li/Na-ion organic cathode materials have been identified, and those exhibiting intrinsic solid-phase ionic conductivity are even rarer. In this study, we present tetra-lithium and sodium salts with the generic formulae: A4-Ph-CH3P and A4-Ph-PhP, wherein A = Li, Na; Ph-CH3P = 2,5-dioxido-1,4-phenylene bis(methylphosphinate); Ph-PhP = 2,5-dioxido-1,4-phenylene bis(phenylphosphinate), as novel alkali-ion reservoir cathode materials. Notably, A4-Ph-PhP exhibits impressive Li-ion and Na-ion conductivities, measured at 2.6 × 10−7 and 1.4 × 10−7 S cm−1, respectively, in a dry state at 30 °C. To the best of our knowledge, these represent the first example of small-molecule organic cathode materials with intrinsic Li+ and Na+ conductivity. Theoretical calculations provide further insight into the electrochemical activity of the Li/Na-phenolate groups, as well as the enhanced electron affinity resulting from -phenyl and -Na substitutions. Additionally, Na4-Ph-PhP displays two distinct charge–discharge plateaus at approximately 2.2 V and 2.7 V, and 2.0 V and 2.5 V vs. Na+/Na, respectively, and demonstrates stable cycling performance, with 100 cycles at a rate of 0.1C and an impressive 1000 cycles at 1C. This study not only expands the portfolio of phenolate-based organic salts for use in metal-ion batteries but also underscores the potential of phosphonate-based organic materials in advancing energy storage technologies.
展开▼
机译:促进电极材料中的快速电荷转移需要优化其离子传输特性。目前,只有有限数量的 Li/Na-ion 有机正极材料被鉴定出来,而那些表现出本征固相离子电导率的材料更是罕见。在这项研究中,我们提出了通用式为:A4-Ph-CH3P 和 A4-Ph-PhP的四锂盐和钠盐,其中 A = Li、Na;PH-CH3P = 2,5-二氧化-1,4-苯基双(次膦酸甲酯);Ph-PhP = 2,5-二氧化-1,4-苯基双(苯基次膦酸盐),作为新型碱离子储层阴极材料。值得注意的是,A4-Ph-PhP 表现出令人印象深刻的锂离子和钠离子电导率,在 30 °C 的干燥状态下,分别为 2.6 × 10-7 和 1.4 × 10-7 S cm-1。 据我们所知,这些代表了具有本征 Li+ 和 Na+ 导电性的小分子有机正极材料的第一个例子。理论计算进一步揭示了 Li/Na-酚酸酯基团的电化学活性,以及 -苯基和 -Na 取代产生的增强电子亲和力。此外,Na4-Ph-PhP 分别在大约 2.2 V 和 2.7 V 以及 2.0 V 和 2.5 V 与 Na+/Na 之间表现出两个不同的充放电平台,并表现出稳定的循环性能,在 0.1C 的速率下具有 100 次循环,在 1C 下具有令人印象深刻的 1000 次循环。这项研究不仅扩展了用于金属离子电池的酚酸盐基有机盐的产品组合,还强调了基于膦酸盐的有机材料在推进储能技术方面的潜力。
展开▼