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用基于纳米氮化硅的固体电解质界面层增强锂金属电池。

Enhancing lithium metal batteries with a nano-silicon nitride-based solid electrolyte interface layer.

作者信息

Damircheli Roya, Campos Odalys Cristina, Hoang Binh, Lin Chaun-Fu

机构信息

Department of Mechanical Engineering, Catholic University of America Washington DC 20064 USA

Department of Chemistry, Catholic University of America Washington DC 20064 USA.

出版信息

RSC Adv. 2025 Aug 26;15(37):30427-30435. doi: 10.1039/d5ra05077d. eCollection 2025 Aug 22.

Abstract

Lithium metal batteries promise high energy density but suffer from unstable solid-electrolyte interphases that promote dendrite growth and premature failure. Here we report a simple drop-casting pretreatment that deposits a uniform layer of nano-sized silicon nitride (SiN <50 nm) onto lithium foil, forming a LiN-rich artificial interphase. Two loadings, 0.2 and 1 wt%, were evaluated under rinsed and non-rinsed conditions. Structural and chemical characterization results from SEM and X-ray diffraction show that the non-rinsed 1 wt% coating yields a dense, uniform layer dominated by LiN. Electrochemical impedance spectroscopy reveals a stable low charge-transfer resistance, and symmetric-cell cycling at 1 mA cm demonstrates a lifespan of 1375 hours, compared with 950 hours for the rinsed sample and 280 hours for untreated lithium. The improved performance is attributed to the electrochemically stable, ionically conductive, and mechanically robust LiN-based interphase that suppresses dendrite formation and preserves interfacial contact. This work highlights nano-SiN as an effective additive for enabling safer and longer-lasting high-energy lithium metal batteries.

摘要

锂金属电池有望实现高能量密度,但存在固体电解质界面不稳定的问题,这会促进枝晶生长并导致过早失效。在此,我们报告一种简单的滴铸预处理方法,该方法可在锂箔上沉积一层均匀的纳米级氮化硅(SiN,<50 nm),形成富含LiN的人工界面。在冲洗和未冲洗条件下评估了两种负载量,即0.2 wt%和1 wt%。扫描电子显微镜(SEM)和X射线衍射的结构与化学表征结果表明,未冲洗的1 wt%涂层产生了以LiN为主的致密、均匀层。电化学阻抗谱显示出稳定的低电荷转移电阻,在1 mA cm下的对称电池循环表明其寿命为1375小时,相比之下,冲洗后的样品寿命为950小时,未处理的锂寿命为280小时。性能的提升归因于电化学稳定、离子导电且机械坚固的基于LiN的界面,该界面抑制了枝晶形成并保持了界面接触。这项工作突出了纳米SiN作为一种有效的添加剂,可实现更安全、更持久的高能量锂金属电池。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c03/12380044/e9a0857f98ba/d5ra05077d-f1.jpg

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