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Stable Cycling of Room-Temperature Sodium-Sulfur Batteries Based on an In Situ Crosslinked Gel Polymer Electrolyte

机译:基于原位交联凝胶聚合物电解质的室温钠硫电池稳定循环

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摘要

High-temperature sodium-sulfur battery (HT Na–S) technology has attracted substantial interest in the stationary energy storage sector due to its low cost and high energy density. However, the currently used solid electrolyte (?-alumina) is expensive and can only be operated at high temperatures, which compromises safety. On the other hand, liquid electrolytes in room temperature sodium-sulfur batteries (RT Na–S) are susceptible to dendrite formation and polysulfide shuttle. Consequently, an electrolyte with both solid (shuttle blocking) and liquid (ionic conductivity) properties to overcome the above-mentioned issues is highly desired. Herein, a high-performance quasi-solid state crosslinked gel polymer electrolyte (GPE) prepared in situ using pentaerythritol triacrylate (PETA) exhibiting high ionic conductivity of 2.33 mS cm~(?1) at 25 ℃ is presented. The GPE-based electrolyte shows high stability resulting in a high discharge capacity of >600 mAh gs~(?1) after 2500 cycles with an average Coulombic efficiency of 99.91. Density functional theory calculations reveal a weak interaction between the Na+ ions and the oxygen molecules of the PETA moiety, which leads to a facile cation movement. The crosslinked polymer network is tightly connected to the cathode and can confine sulfides, thereby facilitating the conversion process.
机译:高温钠硫电池(HT Na-S)技术因其低成本和高能量密度而引起了固定式储能领域的极大兴趣。然而,目前使用的固体电解质(?-氧化铝)价格昂贵,只能在高温下操作,这会影响安全性。另一方面,室温钠硫电池 (RT Na-S) 中的液体电解质容易受到枝晶形成和多硫化物穿梭的影响。因此,非常需要一种同时具有固体(穿梭阻断)和液体(离子电导率)特性的电解质来克服上述问题。本文介绍了一种使用季戊四醇三丙烯酸酯(PETA)原位制备的高性能准固态交联凝胶聚合物电解质(GPE),在25 °C下表现出2.33 mS cm~(?1)的高离子电导率。GPE基电解液具有较高的稳定性,循环2500次后放电容量高达>600 mAh gs~(?1),平均库仑效率为99.91%。密度泛函理论计算揭示了 Na+ 离子与 PETA 部分的氧分子之间的弱相互作用,这导致了简单的阳离子运动。交联聚合物网络与阴极紧密连接,可以限制硫化物,从而促进转化过程。

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