Lin Xiaojie, Zhou Xiaoxiang, Zhao Li, Zhou Jie, Ni Hailiang, Huang Ke, Zhang Yi, Jiang Xue, Xiong Xiaoli, Yu Huimin
Key Laboratory of the Evaluation and Monitoring of Southwest Land Resources, Ministry of Education, College of Chemistry and Material Science, Sichuan Normal University, Chengdu, Sichuan, 610068, China.
Key Laboratory of Fire Protection and Retardant Technology, Ministry of Emergency Management, Chengdu, Sichuan, 610037, China.
Talanta. 2025 Mar 1;284:127198. doi: 10.1016/j.talanta.2024.127198. Epub 2024 Nov 13.
In this work, a portable and 3D printing sulfur speciation analysis device was constructed, which effectively integrated with a vapor generation system, a microplasma chamber and a colorimetric unit. Point discharge microplasma was used for highly efficient oxidation of gaseous HS to SO, thus the simple and time-saving nonchromatographic speciation analysis of S and SO was achieved by simply adjusting the plasma "on" or "off". In this process, S were converted to volatile HS by acidification reaction and then oxidized to SO by microplasma, prior to a specific discoloring reaction with yellow fluorescein derivative, which effectively alleviated the interference from sample matrix and further improved the analytical sensitivity. The absorbance value of fluorescein derivative at 482 nm was used for quantitative analysis of S and SO. Under optimal conditions, the detection limit was calculated to be 6.22 μmol L for both analytes in the concentration range of 30-210 μmol L, while 60 μmol L analytes were recognizable by the naked eye. The whole 3D-printed device was miniaturized, portable and easy to operate, with fast response time (<1 min), which was only the size of an adult's palm and equipped with one 3.7 V lithium battery for power. This method has been successfully utilized to field analysis of toxic S and SO in real environmental water samples.
在本工作中,构建了一种便携式3D打印硫形态分析装置,该装置有效地集成了蒸汽发生系统、微等离子体腔室和比色单元。采用点放电微等离子体将气态HS高效氧化为SO,通过简单地调节等离子体“开”或“关”,实现了S和SO的简单、省时的非色谱形态分析。在此过程中,S通过酸化反应转化为挥发性HS,然后通过微等离子体氧化为SO,再与黄色荧光素衍生物发生特定的褪色反应,有效减轻了样品基质的干扰,进一步提高了分析灵敏度。利用荧光素衍生物在482 nm处的吸光度值对S和SO进行定量分析。在最佳条件下,两种分析物在30 - 210 μmol·L浓度范围内的检测限均计算为6.22 μmol·L,而60 μmol·L的分析物可用肉眼识别。整个3D打印装置小型化、便携且易于操作,响应时间快(<1分钟),其尺寸仅为成人手掌大小,并配备一块3.7 V锂电池供电。该方法已成功应用于实际环境水样中有毒S和SO的现场分析。