Fu Xiao-Bin, Yang Guang, Wu Jin-Ze, Wang Jia-Chen, Chen Qun, Yao Ye-Feng
Physics Department & Shanghai Key Laboratory of Magnetic Resonance, School of Physics and Materials Science, East China Normal University, North Zhongshan Road 3663, 200062, Shanghai, P. R. China.
Chemphyschem. 2018 Jan 5;19(1):45-50. doi: 10.1002/cphc.201701092. Epub 2017 Nov 22.
Fast lithium-ion transportation is found in the crystalline polymer electrolytes, α-CD-PEO /Li (n=12, 40), prepared by self-assembly of α-cyclodextrin (CD), polyethylene oxide (PEO) and Li salts. A detailed solid-state NMR study combined with the X-ray diffraction technique reveals the unique structural features of the samples, that is, a) the tunnel structure formed by the assembled CDs, providing the ordered long-range pathway for Li ion transportation; b) the all-trans conformational sequence of the PEO chains in the tunnels, attenuating significantly the coordination between Li and the EO segments. The origin of the fast lithium-ion transportation has been attributed to these unique structural features. This work demonstrates the first example in solid polymer electrolytes (SPEs) for "creating" fast ion transportation through material design and will find potential applications in the design of new ionconducting SPE materials.
通过α-环糊精(CD)、聚环氧乙烷(PEO)和锂盐自组装制备的结晶聚合物电解质α-CD-PEO/Li(n = 12, 40)中发现了快速锂离子传输现象。结合X射线衍射技术的详细固态核磁共振研究揭示了样品独特的结构特征,即:a)由组装的CD形成的隧道结构,为锂离子传输提供了有序的长程通道;b)隧道中PEO链的全反式构象序列,显著减弱了Li与EO链段之间的配位作用。快速锂离子传输的起源归因于这些独特的结构特征。这项工作展示了固体聚合物电解质(SPEs)中通过材料设计“创造”快速离子传输的首个实例,并将在新型离子导电SPE材料的设计中找到潜在应用。