Look-up tables for complex refractive index correction of particle sizes measured by common research-grade optical particle counters

Optical particle counters (OPCs) are widely used to measure the aerosol particle number size distribution over a large size range encompassing sub- and super-micron diameters. The measurement principle of OPCs is based on the dependence of light scattering on particle size. However, this dependence is not monotonic at all sizes as light scattering also depends on the particle composition (i.e., the complex refractive index, m ) and morphology. Therefore, the conversion of the measured scattered intensity to the particle size depends on the microphysical properties of the sampled aerosol population and might not be unique at all sizes. While these complexities have been considered before, corrections are typically applied ad hoc and are not standardized. This paper addresses this issue by providing a consistent and extended database of pre-computed correction factors for a wide range of complex refractive index values representing the composition variability in atmospheric aerosols. These correction factors are calculated for five different commercial OPCs by assuming Mie theory for homogeneous spherical particles and by varying the real part of the complex refractive index between 1.33 and 1.75 in steps of 0.01 and the imaginary part between 0.0 and 0.4 in steps of 0.001. The datasets are distributed for data users and geophysicists using number size distribution measurements from OPC for their research on atmospheric aerosols. Application and caveats of the correction factors are discussed, and key recommendations are provided to ensure the robustness and consistency of size distribution datasets.

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Publication Details

Journal
Aerosol Research
Published
2026-09-16
DOI
https://doi.org/10.5194/ar-4-429-2026
Primary Topic
Atmospheric aerosols and clouds
Type
article
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Look-up tables for complex refractive index correction of particle sizes measured by common research-grade optical particle counters

Claudia Di Biagio, Paola Formenti
Aerosol Research
Atmospheric aerosols and clouds
article

Look-up tables for complex refractive index correction of particle sizes measured by common research-grade optical particle counters

Claudia Di Biagio, Paola Formenti
article en

Abstract

Optical particle counters (OPCs) are widely used to measure the aerosol particle number size distribution over a large size range encompassing sub- and super-micron diameters. The measurement principle of OPCs is based on the dependence of light scattering on particle size. However, this dependence is not monotonic at all sizes as light scattering also depends on the particle composition (i.e., the complex refractive index, m ) and morphology. Therefore, the conversion of the measured scattered intensity to the particle size depends on the microphysical properties of the sampled aerosol population and might not be unique at all sizes. While these complexities have been considered before, corrections are typically applied ad hoc and are not standardized. This paper addresses this issue by providing a consistent and extended database of pre-computed correction factors for a wide range of complex refractive index values representing the composition variability in atmospheric aerosols. These correction factors are calculated for five different commercial OPCs by assuming Mie theory for homogeneous spherical particles and by varying the real part of the complex refractive index between 1.33 and 1.75 in steps of 0.01 and the imaginary part between 0.0 and 0.4 in steps of 0.001. The datasets are distributed for data users and geophysicists using number size distribution measurements from OPC for their research on atmospheric aerosols. Application and caveats of the correction factors are discussed, and key recommendations are provided to ensure the robustness and consistency of size distribution datasets.

Aerosol ResearchVol. 4(2)
Centre National de la Recherche Scientifique (FR), Université Paris-Est Créteil (FR), Université Paris Cité (FR), Paris-Est Sup (FR), Centre National pour la Recherche Scientifique et Technique (CNRST) (MA), Sorbonne Paris Cité (FR), Laboratoire Interuniversitaire des Systèmes Atmosphériques (FR), Laboratoire Techniques, Territoires et Sociétés (FR)
Openalex Percentile: Top 13%
Atmospheric aerosols and clouds
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