Stable sodium metal anode enabled by interfacial room-temperature liquid metal engineering for high-performance sodium–sulfur batteries with carbonate-based electrolyte
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引用次数: 0
Abstract
Sodium (Na) metal is a competitive anode for next-generation energy storage applications in view of its low cost and high-energy density. However, the uncontrolled side reactions, unstable solid electrolyte interphase (SEI) and dendrite growth at the electrode/electrolyte interfaces impede the practical application of Na metal as anode. Herein, a heterogeneous Na-based alloys interfacial protective layer is constructed in situ on the surface of Na foil by self-diffusion of liquid metal at room temperature, named “HAIP Na.” The interfacial Na-based alloys layer with good electrolyte wettability and strong sodiophilicity, and assisted in the construction of NaF-rich SEI. By means of direct visualization and theoretical simulation, we verify that the interfacial Na-based alloys layer enabling uniform Na+ flux deposition and suppressing the dendrite growth. As a result, in the carbonate-based electrolyte, the HAIP Na||HAIP Na symmetric cells exhibit a remarkably enhanced cycling life for more than 650 h with a capacity of 1 mAh cm−2 at a current density of 1 mA cm−2. When the HAIP Na anode is paired with sulfurized polyacrylonitrile (SPAN) cathode, the SPAN||HAIP Na full cells demonstrate excellent rate performance and cycling stability.
金属钠(Na)成本低、能量密度高,是下一代储能应用中极具竞争力的阳极。然而,不可控的副反应、不稳定的固体电解质相(SEI)以及电极/电解质界面上的枝晶生长阻碍了金属钠作为阳极的实际应用。在此,通过液态金属在室温下的自扩散,在 Na 箔表面原位构建了异质 Na 基合金界面保护层,命名为 "HAIP Na"。该界面Na基合金层具有良好的电解质润湿性和较强的亲钠性,有助于构建富含NaF的SEI。通过直接观察和理论模拟,我们验证了界面 Na 基合金层能使 Na+ 通量均匀沉积并抑制枝晶生长。因此,在碳酸盐基电解质中,HAIP Na||HAIP Na 对称电池的循环寿命显著提高,在电流密度为 1 mA cm-2 时,电池容量为 1 mAh cm-2,循环时间超过 650 小时。当 HAIP Na 阳极与硫化聚丙烯腈(SPAN)阴极配对时,SPAN||HAIP Na 全电池表现出卓越的速率性能和循环稳定性。