This study presents the first application of MeV secondary ion mass spectrometry (MeV SIMS) for the chemical characterization of fine particulate matter (PM 2.5 ) aerosol particles collected in Kraków, Poland. Fine particulate matter samples were collected during the summer and winter seasons at an urban background site and analysed with MeV SIMS. Ethanol-washed samples deposited on silicon wafers allowed the identification of inorganic and organic species, including ammonium, potassium, sodium, nitrate, bisulphate, phosphate, and aromatic compounds. Hydrocarbon ions and oxidized organic species were detected, indicating the presence of combustion-related and secondary organic aerosol constituents. Identification of phosphate and sulphate ions (PO 2 − , PO 3 − , H 2 PO 4 − , SO 2 − , SO 3 − and HSO 4 − ) indicates the presence of these salts, most likely as ammonium bisulphate, ammonium sulphate, dipotassium phosphate, potassium bisulphate, potassium sulphate, and sodium sulphate, corroborating our earlier results from XANES. By enabling the direct detection of molecular species at the surface, MeV SIMS provides molecular-level information that complements bulk-sensitive techniques. Hydrocarbons, including aromatic compounds, and inorganic species, such as NO 3 − , HSO 4 − and PO 3 − were identified with observed variations between seasons. These seasonal trends indicate different dominant atmospheric pathways, with winter PM 2.5 primarily influenced by combustion emissions and nitrate formation, while summer PM 2.5 shows stronger contributions from photochemical oxidation and secondary aerosol formation processes. These findings demonstrate the potential of MeV SIMS as a complementary technique for urban aerosol research and contribute to a deeper understanding of the composition of PM 2.5 in polluted environments. • First application of MeV SIMS to study PM 2.5 aerosol samples in Krakow, Poland. • Identification of inorganic species, including nitrates, sulphates and phosphates. • Detection of aromatic and oxygenated organic species in both summer/winter seasons. • Observed seasonal variations in chemical composition. • Demonstration of MeV SIMS complementarity to XANES and IC for PM 2.5 characterization.
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