High-resolution patterning of silica nanoparticle-based ionogels by reverse-offset printing and its characterization

材料科学 纳米颗粒 纳米技术 墨水池 电容 饱和(图论) 化学工程 超级电容器 纳米尺度 电极 复合材料 化学 数学 组合数学 工程类 物理化学
作者
Yasuyuki Kusaka,Khiev Kimnannara,Masayoshi Koutake,Shinya Kano,Hiromitsu Furukawa,Nobuko Fukuda
出处
期刊:Flexible and printed electronics [IOP Publishing]
卷期号:7 (3): 035013-035013 被引量:2
标识
DOI:10.1088/2058-8585/ac808b
摘要

Abstract In this study, nanoparticle-based, high-resolution patternable ionogels are presented to provide a route for realizing printed solid-state ionic devices. By incorporating an ionic liquid (IL) into a spherical silica nanoparticle suspension, a quasi-solid ionogel layer compatible with reverse-offset printing (ROP) with a spatial resolution of approximately 5 μ m was realized. In situ near-infrared (NIR) spectroscopic analysis revealed the drying kinetics of the ionogel ink during printing, and a temporal margin for successful patterning in relation to its dry state was provided. In contrast to polymer-based gels, the present ionogel can be regarded as a porous medium of silica filled with ionic liquids with a certain degree of saturation. By optimizing the ink formulations, ROP patterning was successful for saturation up to 102%, indicating the nanoscale pores between silica nanoparticles can be fully used as an ion-conductive phase in the proposed patternable gel. The conductivity depends drastically on saturation, with a saturation exponent of approximately −7 according to Archie’s law. From a complementary scratch test, an ionogel at a saturated condition still exhibited fragile but solid-like characteristics. As a demonstration, planar micro-supercapacitors fully printed with reverse-offset printable ionogel and carbon inks were fabricated. A comparison with a drop-casted IL showing a similar capacitance indicates a limited ability of the carbon nanoparticle material used here, while a relatively high resistance of the silica-nanoparticle-based ionogel hinders a fast cyclic voltammetry response.
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