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Small-Dipole-Molecule-Containing Electrolytes for High-Voltage Aqueous Rechargeable Batteries

机译:一种用于高压水性可充电电池的含小偶极子电解质

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High-voltage aqueous rechargeable batteries are promising competitors for next-generation energy storage systems with safety and high specific energy, but they are limited by the absence of low-cost aqueous electrolytes with a wide electrochemical stability window (ESW). The decomposition of aqueous electrolytes is mainly facilitated by the hydrogen bond network between water molecules and the water molecules in the solvation sheath. Here, three types of small dipole molecules (small molecules containing a dipole; glycerol (Gly), erythritol (Et), and acrylamide (AM)) are reported to develop aqueous electrolytes with high safety and wide ESW (over 2.5 V) for aqueous lithium-, sodium-, and zinc-ion batteries, respectively. The solvation-sheath structures are explored by ab initio molecular dynamics (MD) simulations, demonstrating that three types of dipole molecules deplete the water molecules in the solvation sheath of the charge carrier and break the hydrogen bond network between the water molecules, thus effectively expanding the ESW. A battery constructed from lithium titanate and lithium manganate in Gly-containing electrolyte exhibits an output voltage of 2.45 V and retains a specific capacity of 119.6 mAh g(-1) after 400 cycles. This work provides another strategy for exploiting low-cost high-voltage electrolytes for aqueous energy-storage systems.
机译:高压水性可充电电池是下一代储能系统的有力竞争者,具有安全性和高比能量,但由于缺乏具有宽电化学稳定性窗口(ESW)的低成本水性电解质,它们受到限制。水电解质的分解主要由水分子与溶剂化鞘中的水分子之间的氢键网络促进。在这里,据报道,三种类型的小偶极子分子(含有偶极子的小分子;甘油(Gly)、赤藓糖醇(Et)和丙烯酰胺(AM))分别为水系锂、钠和锌离子电池开发了具有高安全性和宽ESW(超过2.5 V)的水性电解质。通过从头算分子动力学(MD)模拟方法研究了溶剂化-鞘结构,表明3种偶极子分子耗尽了电荷载流子溶剂化鞘中的水分子,破坏了水分子之间的氢键网络,从而有效地扩展了ESW。由含甘氨酸锂电解液中的钛酸锂和锰酸锂构成的电池输出电压为2.45 V,循环400次后仍保持119.6 mAh g(-1)的比容量。这项工作为开发低成本高压电解质用于水性储能系统提供了另一种策略。

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