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A Dual‐Salt Gel Polymer Electrolyte with 3D Cross‐Linked Polymer Network for Dendrite‐Free Lithium Metal Batteries

机译:具有3D交联聚合物网络的双盐凝胶聚合物电解质适用于无枝晶锂金属电池

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摘要

Lithium metal batteries show great potential in energy storage because of their high energy density. Nevertheless, building a stable solid electrolyte interphase (SEI) and restraining the dendrite growth are difficult to realize with traditional liquid electrolytes. Solid and gel electrolytes are considered promising candidates to restrain the dendrites growth, while they are still limited by low ionic conductivity and incompatible interphases. Herein, a dual‐salt (LiTFSI‐LiPF6) gel polymer electrolyte (GPE) with 3D cross‐linked polymer network is designed to address these issues. By introducing a dual salt in 3D structure fabricated using an in situ polymerization method, the 3D‐GPE exhibits a high ionic conductivity (0.56 mS cm−1 at room temperature) and builds a robust and conductive SEI on the lithium metal surface. Consequently, the Li metal batteries using 3D‐GPE can markedly reduce the dendrite growth and achieve 87.93% capacity retention after cycling for 300 cycles. This work demonstrates a promising method to design electrolytes for lithium metal batteries.
机译:锂金属电池由于其高能量密度而显示出巨大的储能潜力。然而,使用传统的液体电解质难以实现建立稳定的固体电解质中间相(SEI)和抑制枝晶生长。固态和凝胶电解质被认为是抑制树枝状晶体生长的有前途的候选者,而它们仍然受到低离子电导率和不相容相间的限制。本文中,具有3D交联聚合物网络的双盐(LiTFSI-LiPF6)凝胶聚合物电解质(GPE)旨在解决这些问题。通过使用原位聚合方法在3D结构中引入双盐,3D-GPE表现出高离子电导率(室温下为0.56 mS cm -1 ),并在表面上形成坚固而导电的SEI锂金属表面。因此,使用3D-GPE的锂金属电池可显着减少枝晶生长,并在循环300次后达到87.93%的容量保持率。这项工作证明了一种有前途的设计锂金属电池电解液的方法。

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