2-甲基咪唑诱导均匀锌沉积构建高稳定性碱性锌铁液流电池

2-Methylimidazole enabled uniform zinc deposition for stable alkaline Zn-Fe flow batteries

  • 摘要: 在碱性锌铁液流电池中,锌酸根的非理想沉积行为易引发锌枝晶和死锌的生成,严重影响电池的循环稳定性与使用寿命。2-甲基咪唑(2-Mel)作为功能性添加剂,可通过与锌酸根发生配位作用,诱导锌在电极表面均匀沉积,并在锌表面形成稳定吸附层,可有效抑制锌枝晶生长和死锌形成。形貌及晶面分析表明,2-Mel的引入可将锌的优势生长晶面由与基底近乎垂直的(101)晶面转变为平行于基底的(002)晶面,显著地改善了锌沉积的形貌。电化学测试结果显示,2-Mel的引入几乎不影响锌酸根的沉积动力学,同时能显著降低传质阻抗与腐蚀电流,优化锌负极界面反应。优化条件下,碱性锌铁液流电池在80?mA?cm-2电流密度下可稳定循环超过1050圈,并在25-55?℃范围内展现出优异的温度适应性,且最大峰值功率密度可达1133.7?mW?cm-2。上述结果表明,2-Mel作为一种高效添加剂,在提升碱性锌铁液流电池的电化学性能和循环寿命方面展现出良好的应用前景。

     

    Abstract: In alkaline zinc-iron flow batteries (AZIFBs), the non-ideal deposition behavior of zincate ions (Zn(OH)42-) readily induces the formation of zinc dendrites and “dead zinc”, severely compromising cycling stability and service life. In this study, 2-methylimidazole (2-Mel) was introduced as a functional additive to regulate zinc electrodeposition and enhance battery performance. Through coordination with zincate ions, 2-Mel induces uniform zinc deposition on the electrode surface and forms a stable adsorption layer, effectively suppressing dendrite growth and dead zinc formation. Morphological and crystallographic analyses (SEM and XRD) reveal that the presence of 2-Mel changes the dominant zinc growth orientation from the (101) plane, nearly perpendicular to the substrate, to the (002) plane, parallel to the substrate, thereby significantly improving zinc deposition morphology. Electrochemical characterization demonstrates that 2-Mel has minimal impact on zincate deposition kinetics but markedly reduces mass transport resistance and corrosion current, optimizing interfacial reactions at the zinc anode. Under optimized conditions, the AZIFB with 2-Mel achieves stable cycling over 1050 cycles at 80?mA?cm-2, exhibits excellent thermal adaptability from 25 to 55?°C, and delivers a peak power density of 1,133.7?mW?cm-2 at 80% state of charge. These results underscore 2-Mel as an efficient additive with significant potential for improving the electrochemical performance and durability of alkaline zinc-iron flow batteries.

     

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