溶解
纳米颗粒
沉积(地质)
氧化物
金属
钠
材料科学
无机化学
化学工程
化学
冶金
纳米技术
地质学
有机化学
古生物学
工程类
沉积物
作者
Eric Simon,Roy Marrache,E. Peled
标识
DOI:10.1149/1945-7111/ada371
摘要
Sodium metal batteries (SMBs) are emerging as a next-generation rechargeable technology due to sodium’s abundance, cost-effectiveness, and high theoretical specific capacity. However, challenges such as uneven sodium plating, dendrite formation, and low coulombic efficiency (CE) limit their performance. This study explores the impact of various additives to carbonate based electrolyte, including metal oxide nanoparticles (Al2O3, TiO2) and vinylene carbonate (VC), on the electrochemical behavior of SMBs, focusing on sodium deposition morphology, solid electrolyte interphase (SEI) composition, and capacity losses. The VC additive contributed to a thicker SEI, characterized by an inorganic-rich inner layer and polymer-rich outer layer, resulting in the highest CE across current rates. In contrast, Al2O3 samples demonstrated intermediate performance, with NaOH on the SEI surface and reduced polymer content compared to VC. Additionally, we show that capacity losses from isolated “dead” sodium represent the largest contributor to total capacity losses, with cells containing VC and 1% Al2O3 exhibiting the lowest total capacity losses. Moreover, the study demonstrates the uneven distribution of sodium deposition on the aluminum CC, especially its tendency to favor regions with lower fluorine concentration in the SEI. The findings from this study are important for optimizing SMB design, stability, and cycling efficiency.
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