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Polymer-Nanocomposite Brush-like Architectures as an All-Solid Electrolyte Matrix

机译:聚合物-纳米复合刷状结构作为全固体电解质基质

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Herein, we report on polymer-nanocomposites with brush-like architectures and evaluate their feasibility as an all-solid electrolyte matrix supporting Li+-ion conduction. Showcased as a first example in the domain of electrolyte research, the study probes several key factors, such as (i) core morphology, (ii) surface modifiers/functionality, (iii) grafting length, and (iv) density of the brushes, and determines their role on the overall electrochemical properties of these nanostructured organicinorganic hybrids. Nanostructured titania was synthesized via wet-chemical approaches using either controlled hydrolysis or hydrothermal methods. Exercising suitable control on reaction parameters led to well-defined morphologies/phases, such as nanoparticles, nanospindles, nanourchins, nanorods or nanotubes, in either anatase, rutile or mixed forms. Covalent anchoring on titania nanostructures was achieved using dopamine, gallic acid and glycerol as small organic moieties. A one-pot process of priming the available surface functional groups postmodification with isocyanate chemistry was followed by grafting polyethylene glycol monomethyl ethers of desired chain lengths. Finally, complexation with lithium salt yielded electrolyte compositions where the ethylene oxide (EO) fractions aid in ion-solvation with ease. The synthesized materials were characterized in detail employing XRD, TEM, DRS-UV, FTIR, micro-Raman, TG-DTA and DSC at each stage to confirm the products and ascertain the physicochemical properties. Comprehensive evaluation using temperature-step electrochemical impedance spectroscopy (EIS) of these brush-like nanocomposites provided crucial leads toward establishing a plausible physical model for the system and understanding the mechanism of ion transport in these all-solid matrices. The preliminary results on ionic conductivity (s) obtained for some of the compositions are estimated to be within the range of similar to 10(-4) to 10(-5) S cm(-1) in the temperature window of the study that holds excellent promise for further improvement.
机译:在这里,我们报道了具有刷状结构的聚合物纳米复合材料,并评估了其作为支持Li +离子传导的全固态电解质基质的可行性。作为电解质研究领域的第一个例子,该研究探讨了几个关键因素,例如(i)核心形态,(ii)表面改性剂/功能,(iii)接枝长度和(iv)刷子的密度,并确定它们在这些纳米结构的有机无机杂化物的整体电化学性质中的作用。纳米结构的二氧化钛是通过湿化学方法使用受控水解或水热方法合成的。对反应参数进行合适的控制导致形成明确定义的形态/相,例如锐钛矿,金红石或混合形式的纳米粒子,纳米纺锤体,纳米顽童,纳米棒或纳米管。使用多巴胺,没食子酸和甘油作为小有机部分,可以共价固定在二氧化钛纳米结构上。一锅法处理后,用异氰酸酯化学方法对可用的表面官能团进行底漆处理,然后接枝具有所需链长的聚乙二醇单甲醚。最后,与锂盐络合产生电解质组合物,其中环氧乙烷(EO)馏分可轻松帮助离子溶剂化。在每个阶段使用XRD,TEM,DRS-UV,FTIR,微拉曼,TG-DTA和DSC对合成材料进行了详细表征,以确认产物并确定理化性质。使用温度阶跃式电化学阻抗谱(EIS)对这些刷状纳米复合材料进行综合评估,为建立合理的系统物理模型以及了解这些全固体基质中离子迁移的机理提供了重要线索。在该研究的温度窗口中,估计某些组合物获得的离子电导率的初步结果在类似于10(-4)至10(-5)S cm(-1)的范围内,有望进一步改进。

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