Key Laboratory of Analytical Chemistry for Biology and Medicine (Ministry of Education), College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, PR China.
Anal Chem. 2012 Apr 17;84(8):3745-50. doi: 10.1021/ac3003243. Epub 2012 Mar 26.
A simple approach to the mass production of nanoporous gold electrode arrays on cellulose membranes for electrochemical sensing of oxygen using ionic liquid (IL) electrolytes was established. The approach, combining the inkjet printing of gold nanoparticle (GNP) patterns with the self-catalytic growth of these patterns into conducting layers, can fabricate hundreds of self-designed gold arrays on cellulose membranes within several hours using an inexpensive inkjet printer. The resulting paper-based gold electrode arrays (PGEAs) had several unique properties as thin-film sensor platforms, including good conductivity, excellent flexibility, high integration, and low cost. The porous nature of PGEAs also allowed the addition of electrolytes from the back cellulose membrane side and controllably produced large three-phase electrolyte/electrode/gas interfaces at the front electrode side. A novel paper-based solid-state electrochemical oxygen (O(2)) sensor was therefore developed using an IL electrolyte, 1-butyl-3-methylimidazolium hexafluorophosphate (BMIMPF(6)). The sensor looked like a piece of paper but possessed high sensitivity for O(2) in a linear range from 0.054 to 0.177 v/v %, along with a low detection limit of 0.0075% and a short response time of less than 10 s, foreseeing its promising applications in developing cost-effective and environment-friendly paper-based electrochemical gas sensors.
建立了一种在纤维素膜上大规模生产纳米多孔金电极阵列的简单方法,用于使用离子液体 (IL) 电解质电化学感应氧气。该方法结合了金纳米颗粒 (GNP) 图案的喷墨打印和这些图案自催化生长为导电层,可以在几小时内使用廉价的喷墨打印机在纤维素膜上制造数百个自行设计的金阵列。所得到的基于纸张的金电极阵列 (PGEA) 具有作为薄膜传感器平台的几个独特特性,包括良好的导电性、优异的柔韧性、高集成度和低成本。PGEA 的多孔性质还允许从背面纤维素膜侧添加电解质,并可在前电极侧可控地产生大的三相电解质/电极/气体界面。因此,使用 IL 电解质 1-丁基-3-甲基咪唑六氟磷酸盐 (BMIMPF(6)) 开发了一种新型基于纸张的固态电化学氧气 (O(2)) 传感器。该传感器看起来像一张纸,但对 0.054 至 0.177 v/v %范围内的 O(2)具有高灵敏度,检测限低至 0.0075%,响应时间短于 10 s,有望在开发具有成本效益和环保的基于纸张的电化学气体传感器方面得到应用。