Aix Marseille Université, CNRS, MADIREL UMR7246, 13397 Marseille, France.
Nat Mater. 2013 May;12(5):452-7. doi: 10.1038/nmat3602. Epub 2013 Mar 31.
Electrochemical energy storage is one of the main societal challenges of this century. The performances of classical lithium-ion technology based on liquid electrolytes have made great advances in the past two decades, but the intrinsic instability of liquid electrolytes results in safety issues. Solid polymer electrolytes would be a perfect solution to those safety issues, miniaturization and enhancement of energy density. However, as in liquids, the fraction of charge carried by lithium ions is small (<20%), limiting the power performances. Solid polymer electrolytes operate at 80 °C, resulting in poor mechanical properties and a limited electrochemical stability window. Here we describe a multifunctional single-ion polymer electrolyte based on polyanionic block copolymers comprising polystyrene segments. It overcomes most of the above limitations, with a lithium-ion transport number close to unity, excellent mechanical properties and an electrochemical stability window spanning 5 V versus Li(+)/Li. A prototype battery using this polyelectrolyte outperforms a conventional battery based on a polymer electrolyte.
电化学储能是本世纪面临的主要社会挑战之一。在过去的二十年中,基于液态电解质的经典锂离子技术的性能取得了重大进展,但液态电解质的固有不稳定性导致了安全问题。固态聚合物电解质将是解决这些安全问题、实现小型化和提高能量密度的完美解决方案。然而,与液体一样,锂离子所携带的电荷分数较小(<20%),限制了其功率性能。固态聚合物电解质在 80°C 下工作,导致其机械性能较差且电化学稳定窗口有限。在这里,我们描述了一种基于包含聚苯乙烯段的阴离子嵌段共聚物的多功能单离子聚合物电解质。它克服了上述大多数限制,具有接近单位的锂离子迁移数、优异的机械性能和跨越 5 V 相对于 Li(+)/Li 的电化学稳定窗口。使用这种聚合物电解质的原型电池的性能优于基于聚合物电解质的传统电池。