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A Group of Cyclic Siloxane and Silazane Polymer Films as Nanoscale Electrolytes for Microbattery Architectures

机译:一组环状硅氧烷和硅氮烷聚合物薄膜作为用于微电池结构的纳米级电解质

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Nanoscale (10-50 nm) thin films of cyclic siloxane and silazane polymers were synthesized by initiated chemical vapor deposition (iCVD). We have previously demonstrated that the non-line-of-sight iCVD synthesis process can create uniform conformal coverage of these films over complex nonplanar surfaces. This work will introduce the protocols used to convert these dielectric polymer films into ionic conductors at room temperature. The excellent thickness and morphological stability of these films will be demonstrated along with experiments that determine the ion content in the films. Finally, computational calculations will be used to elucidate the chemical nature of the ion doping and transport processes. These nanoscale, conformal, ionically conducting polymer thin films are attractive as a novel class of nanoscale electrolytes for emerging miniaturized or microbattery architectures such as three-dimensional (3D) batteries which combine high energy (due to high surface area) and power density (due to short ionic transport lengths) within small areal footprints.
机译:通过引发化学气相沉积(iCVD)合成了环状硅氧烷和硅氮烷聚合物的纳米级(10-50 nm)薄膜。先前我们已经证明,非视距iCVD合成工艺可以在复杂的非平面表面上均匀地覆盖这些薄膜。这项工作将介绍用于在室温下将这些介电聚合物薄膜转换成离子导体的协议。这些膜的优异厚度和形态稳定性将与确定膜中离子含量的实验一起得到证明。最后,将使用计算计算来阐明离子掺杂和传输过程的化学性质。这些纳米级的,保形的,离子导电的聚合物薄膜作为一类新型的纳米级电解质具有吸引力,适用于新兴的小型化或微电池架构,例如结合了高能量(由于高表面积)和功率密度(适当)的三维(3D)电池到较小的离子迁移长度)。

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