ACS Appl Mater Interfaces. 2019 Feb 13;11(6):6217-6223. doi: 10.1021/acsami.8b18729. Epub 2019 Feb 1.
Because of the similarity of odor, appearance, and chemical structure of methanol and ethanol, measuring the low concentration of methanol in an alcoholic beverage is difficult to perform in a quick, quantitative, and repeatable fashion. However, it is important for people to monitor the content of methanol in a liquor because a high amount of methanol absorbed will result in blindness, coma, and death. In response to this need, we have developed electrolyte-free methanol electrolysis and ethanol electrolysis based on the nanogap electrochemical cells for the methanol and ethanol sensing. Upon applying a voltage, a high electric field across the nanogap cell enhances the solution ionization and the ion transport rate. Moreover, the nanoscale distance between the electrodes provides a shorter path for electrolysis to easily occur. The nanogap electrochemical cells not only make the direct electrolyte-free organic solvent electrolysis possible but also enhance the sensitivity of the chemical of interest in low-concentration solutions without the influence of the added electrolyte. The nanogap electrochemical cells have been demonstrated having high sensitivity to detect 0.15% methanol volume concentration in deionized water solutions without adding any electrolyte, and its ability for the fake alcoholic beverages' detection has successfully demonstrated.
由于甲醇和乙醇在气味、外观和化学结构上具有相似性,因此很难快速、定量和重复地测量酒精饮料中低浓度的甲醇。然而,监测酒类中甲醇的含量非常重要,因为摄入大量甲醇会导致失明、昏迷和死亡。针对这一需求,我们开发了基于纳米间隙电化学池的无电解质甲醇电解和乙醇电解,用于甲醇和乙醇传感。施加电压后,纳米间隙电池中的高电场会增强溶液的电离和离子传输速率。此外,电极之间的纳米级距离为电解提供了更短的路径,使其更容易发生。纳米间隙电化学池不仅使直接无电解质有机溶剂电解成为可能,而且在不影响添加电解质的情况下,提高了低浓度溶液中感兴趣化学物质的灵敏度。纳米间隙电化学池在不添加任何电解质的情况下,对去离子水中 0.15%甲醇体积浓度具有高灵敏度,并且已经成功证明了其用于检测假冒酒精饮料的能力。