Centers for Disease Control and Prevention, National Institute for Occupational Safety and Health , Cincinnati, Ohio 45226, United States.
Anal Chem. 2017 Jun 20;89(12):6551-6558. doi: 10.1021/acs.analchem.7b00691. Epub 2017 Jun 8.
A new, low-cost approach based on the application of atmospheric radio frequency glow discharge (rf-GD) optical emission spectroscopy (OES) has been developed for near real-time measurement of multielemental concentration in airborne particulate phase. This method involves deposition of aerosol particles on the tip of a cathode in a coaxial microelectrode system, followed by ablation, atomization, and excitation of the particulate matter using the rf-GD. The resulting atomic emissions are recorded using a spectrometer for elemental identification and quantification. The glow discharge plasma in our system was characterized by measuring spatially resolved gas temperatures (378-1438 K) and electron densities (2-5 × 10 cm). Spatial analysis of the spectral features showed that the excitation of the analyte occurred in the region near the collection electrode. The temporal analysis of spectral features in the rf-GD showed that the collected particles were continuously ablated; the time for complete ablation of 193 ng of sucrose particles was found to be approximately 2 s. The system was calibrated using 100 nm particles containing C, Cd, Mn, and Na, respectively. The method provides limits of detection in the range of 0.055-1.0 ng, and a measurement reproducibility of 5-28%. This study demonstrates that the rf-GD can be an excellent excitation source for the development of low-cost hand-held sensors for elemental measurement of aerosols.
一种新的、低成本的方法,基于应用大气射频辉光放电(rf-GD)光发射光谱(OES),已经被开发出来,用于实时测量空气中颗粒物相中的多元素浓度。该方法涉及将气溶胶颗粒沉积在同轴微电极系统的阴极尖端上,然后使用 rf-GD 对颗粒物进行烧蚀、原子化和激发。使用光谱仪记录原子发射,以进行元素识别和定量。通过测量空间分辨的气体温度(378-1438 K)和电子密度(2-5×10^16 cm^-3),对我们系统中的辉光放电等离子体进行了表征。光谱特征的空间分析表明,分析物的激发发生在收集电极附近的区域。对 rf-GD 中光谱特征的时间分析表明,收集的颗粒被连续烧蚀;发现约 2 秒即可完全烧蚀 193 ng 蔗糖颗粒。该系统使用分别含有 C、Cd、Mn 和 Na 的 100nm 颗粒进行校准。该方法的检测限范围为 0.055-1.0ng,测量重现性为 5-28%。这项研究表明,rf-GD 可以成为开发低成本手持式气溶胶元素测量传感器的优秀激发源。