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首页> 外文期刊>Aerosol Science and Technology: The Journal of the American Association for Aerosol Research >New Approach for Near-Real-Time Measurement of Elemental Composition of Aerosol Using Laser-Induced Breakdown Spectroscopy
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New Approach for Near-Real-Time Measurement of Elemental Composition of Aerosol Using Laser-Induced Breakdown Spectroscopy

机译:激光诱导击穿光谱法近实时测量气溶胶元素组成的新方法

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A new approach has been developed for making near-real-time measurement of elemental composition of aerosols using plasma spectroscopy. The method allows preconcentration of miniscule particle mass (pg to ng) directly from the sampled aerosol stream through electrostatic deposition of charged particles (30-900 nm) onto a flat-tip microneedle electrode. The collected material is subsequently ablated from the electrode and monitored by laser-induced breakdown spectroscopy. Atomic emission spectra were collected using a broadband spectrometer with a wavelength range of 200-980 nm. A single-sensor delay time of 1.3 /is was used in the spectrometer for all elements to allow simultaneous measurement of multiple elements. The system was calibrated for various elements including Cd, Cr, Cu, Mn, Na, and Ti. The absolute mass detection limits for these elements were experimentally determined and found to be in the range of 0.018-5 ng. The electrostatic collection technique has many advantages over other substrate-based methods involving aerosol collection on a filter or its focused deposition using an aerodynamic lens. Because the particle mass is collected over a very small area that is smaller than the spatial extent of the laser-induced plasma, the entire mass is available for analysis. This considerably improves reliability of the calibration and enhances measurement accuracy and precision. Further, the aerosol collection technique involves very low pressure drop, thereby allowing higher sample flow rates with much smaller pumps-a desirable feature for portable instrumentation. Higher flow rates also make it feasible to measure trace element concentrations at part per trillion levels. Detection limits in the range of 18-670 ng m~(-3) can be achieved for most of the elements studied at a flow rate of 1.5 L min~(-1) with sampling times of 5 min.
机译:已经开发出一种新方法,用于使用等离子光谱法近实时测量气溶胶的元素组成。该方法可通过将带电粒子(30-900 nm)静电沉积到平头微针电极上,直接从采样的气溶胶流中预浓缩微小颗粒质量(pg至ng)。随后将收集的材料从电极上烧蚀,并通过激光诱导击穿光谱法进行监测。使用宽带光谱仪收集波长范围为200-980 nm的原子发射光谱。在光谱仪中,所有元素的单传感器延迟时间为1.3μs,以允许同时测量多个元素。针对各种元素(包括Cd,Cr,Cu,Mn,Na和Ti)对系统进行了校准。这些元素的绝对质量检测极限是通过实验确定的,发现范围为0.018-5 ng。相对于其他基于基材的方法,静电收集技术具有许多优势,这些方法涉及在过滤器上进行气溶胶收集或使用气动透镜进行聚焦沉积。因为粒子质量是在很小的区域内收集的,该区域小于激光诱导的等离子体的空间范围,所以可以对整个质量进行分析。这大大提高了校准的可靠性,并提高了测量精度和精度。此外,气溶胶收集技术涉及非常低的压降,从而允许使用小得多的泵获得更高的样品流速,这是便携式仪器的理想功能。更高的流速也使测量痕量元素浓度达到万亿分之一水平成为可能。对于大多数被研究的元素,以1.5 L min〜(-1)的流速和5分钟的采样时间可以实现18-670 ng m〜(-3)的检测限。

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