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Boron Trifluoride Anionic Side Groups in Polyphosphazene Based Polymer Electrolyte with Enhanced Interfacial Stability in Lithium Batteries

机译:锂电池中具有增强的界面稳定性的聚磷腈基聚合物电解质中的三氟化硼阴离子侧基

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摘要

A modified polyphosphazene was synthesized using a mixed substitution at phosphorus consisting of 2-(2-methoxyethoxy)ethoxy side groups and anionic trifluoroborate groups. The primary goal was to increase the low lithium ion conductivities of the conventional lithium salt containing poly[2-(2-methoxyethoxy)ethoxy-phosphazene] (MEEP) by the immobilized anionic groups. As in previous studies, the mechanical stability was stabilized by UV induced radiation cross linking. By variation of the molar ratio between different side groups, mechanical and electrochemical properties are controllable. The polymer demonstrated large electrochemical stability windows ranging between 0 and 4.5 V versus the Li/Li+ reference. Total and lithium conductivities of 3.6 × 10−4 S·cm−1 and 1.8 × 10−5 S·cm−1 at 60 °C were revealed for the modified MEEP. When observed in special visualization cells, dendrite formation onset time and short-circuit time were determined as 21 h and 90 h, respectively, under constant current polarization (16 h and 65 h for MEEP, both with 15 wt % LiBOB), which hints to a more stable Li/polymer interface compared to normal MEEP. The enhanced dendrite suppression ability can be explained by the formation of a more conductive solid electrolyte interphase (SEI) and the existence of F-contained SEI components (such as LiF). With the addition of ethylene carbonate–dimethyl carbonate (EC/DMC) to form MEE-co-OBF3P gel polymer, both total and lithium conductivity were enhanced remarkably, and the lithium transference numbers reached reasonable values (σtotal = 1.05 mS·cm−1, σLi+ = 0.22 mS·cm−1, tLi+ = 0.18 at 60 °C).
机译:使用在由2-(2-甲氧基乙氧基)乙氧基侧基和阴离子三氟硼酸酯基组成的磷上的混合取代来合成改性的聚磷腈。主要目的是通过固定的阴离子基团来提高传统的含聚[2-(2-甲氧基乙氧基)乙氧基-磷腈](MEEP)的锂盐的低锂离子电导率。与以前的研究一样,通过紫外线诱导的辐射交联使机械稳定性稳定。通过改变不同侧基之间的摩尔比,可以控制机械和电化学性能。相对于Li / Li + 参比,该聚合物表现出较大的电化学稳定性窗口,介于0至4.5 V之间。总和锂电导率分别为3.6×10 −4 S·cm -1 和1.8×10 −5 S·cm −1修改后的MEEP在60°C时显示。在特殊的可视化单元中观察时,在恒定电流极化(MEEP为16 h和65 h,均含15 wt%LiBOB)下,枝晶形成开始时间和短路时间分别确定为21 h和90 h。与普通的MEEP相比,锂/聚合物界面更稳定。可以通过形成更具导电性的固体电解质中间相(SEI)和包含F的SEI组分(例如LiF)来解释增强的枝晶抑制能力。通过加入碳酸亚乙酯-碳酸二甲酯(EC / DMC)形成MEE-co-OBF3P凝胶聚合物,总电导率和锂电导率均显着提高,锂的转移数达到合理值(σtotal= 1.05 mS·cm -1 ,σLi + = 0.22 mS·cm -1 ,<数学xmlns:mml =“ http://www.w3.org/1998 / Math / MathML“ id =” mm1“溢出=” scroll“> t Li + 在60°C时= 0.18)。

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