Feasibility of an inexpensive single-particle SIBS instrument

This study evaluates spark-induced breakdown spectroscopy (SIBS) as an inexpensive and compact alternative to mass spectrometry and laser-based techniques for real-time elemental analysis of individual aerosol particles. In SIBS, an electrical spark generates a plasma that vaporizes and excites particles traversing the discharge region, enabling optical emission-based elemental detection. We developed and characterized a low-cost single-particle SIBS instrument incorporating an inductive spark generator and a spectrometer-based optical detection system. Plasma characterization showed a channel diameter of ∼0.1 mm, a lifetime of ∼1–3 ms, and a temperature of ∼3500 K, parameters that constrain analysis speed and elemental detectability. Experiments using monodisperse multi-salt aerosol particles demonstrate real-time detection of Na and K from individual particles. Particle–spark interaction probabilities were quantified using both a simplified computational model and experimental measurements, revealing their dependence on flow rate, spark energy, and particle size. Under typical test conditions (∼10 particles/cm3, 0.6 L/min flow, 10 Hz spark frequency), the system achieves hit rates on the order of 0.1/s, enabling practical analysis durations. The minimum detectable particle size is ∼2 µm, corresponding to estimated detection limits of ∼0.3 pg for Na and ∼4 pg for K. Although the relatively low plasma temperature restricts detection of higher-excitation-energy elements (e.g., Mg, Si, C), the results establish the capability of SIBS for elemental analysis of single airborne particles. The approach shows promise for low-cost industrial aerosol monitoring and classification of large ambient aerosol particles. Future improvements should aim at increasing plasma temperature and reducing the particle size detection threshold.

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Publication Details

Journal
Aerosol Science and Technology
Published
2026-09-08
DOI
https://doi.org/10.1080/02786826.2026.2721653
Primary Topic
Advanced Electron Microscopy Techniques and Applications
Type
article
Field-Weighted Citation Impact
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article

Feasibility of an inexpensive single-particle SIBS instrument

Miikka Dal Maso, Antti Rostedt, Jorma Keskinen, Eetu Naukkarinen
Aerosol Science and Technology
Advanced Electron Microscopy Techniques and Applications
article

Feasibility of an inexpensive single-particle SIBS instrument

Miikka Dal Maso, Antti Rostedt, Jorma Keskinen, Eetu Naukkarinen
article en

Abstract

This study evaluates spark-induced breakdown spectroscopy (SIBS) as an inexpensive and compact alternative to mass spectrometry and laser-based techniques for real-time elemental analysis of individual aerosol particles. In SIBS, an electrical spark generates a plasma that vaporizes and excites particles traversing the discharge region, enabling optical emission-based elemental detection. We developed and characterized a low-cost single-particle SIBS instrument incorporating an inductive spark generator and a spectrometer-based optical detection system. Plasma characterization showed a channel diameter of ∼0.1 mm, a lifetime of ∼1–3 ms, and a temperature of ∼3500 K, parameters that constrain analysis speed and elemental detectability. Experiments using monodisperse multi-salt aerosol particles demonstrate real-time detection of Na and K from individual particles. Particle–spark interaction probabilities were quantified using both a simplified computational model and experimental measurements, revealing their dependence on flow rate, spark energy, and particle size. Under typical test conditions (∼10 particles/cm3, 0.6 L/min flow, 10 Hz spark frequency), the system achieves hit rates on the order of 0.1/s, enabling practical analysis durations. The minimum detectable particle size is ∼2 µm, corresponding to estimated detection limits of ∼0.3 pg for Na and ∼4 pg for K. Although the relatively low plasma temperature restricts detection of higher-excitation-energy elements (e.g., Mg, Si, C), the results establish the capability of SIBS for elemental analysis of single airborne particles. The approach shows promise for low-cost industrial aerosol monitoring and classification of large ambient aerosol particles. Future improvements should aim at increasing plasma temperature and reducing the particle size detection threshold.

Aerosol Science and Technology
Tampere University (FI)
Luonnontieteiden ja Tekniikan Tutkimuksen Toimikunta
Openalex Percentile: Top 14%
Advanced Electron Microscopy Techniques and Applications
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