TY - JOUR
T1 - Chemical Characterization and Source Profile of PM2.5 from Firework Emissions in Chengdu, China
AU - Liu, Song
AU - Cheng, Yan
AU - Yang, Shishi
AU - Wang, Xuege
AU - Xiu, Meng
AU - Chow, Judith C.
AU - Watson, John G.
AU - Tian, Tian
AU - Wang, Jing
AU - Tan, Yao
AU - Liu, Yilin
AU - Xu, Yilin
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/8
Y1 - 2026/8
N2 - Air pollutants released from firework burning pose a potential threat to air quality and human health. To identify their emission characteristics and contributions, we conducted in-situ continuous measurements of the six criteria pollutants (i.e., NO2, SO2, O3, CO, PM2.5, and PM10) along with chemical speciation in Chengdu during the Chinese New Year period (February 8–17, 2024). Results showed mass concentrations of PM2.5, PM10, and SO2 increased by about 91%, 84%, and 52%, respectively, during the firework burning period (FBP) compared to the non-firework burning period (NFBP). During the peak burning hours, PM2.5 varied substantially in composition. Characteristic radar chart (CRC) analysis and relative enrichment calculations identified Ba, Mg2+, Cu, and K+ (elemental K) as key markers, with relative enrichments exceeding 4. Firework-related chemical components accounted for about 70% of species contributions to PM2.5 mass. The PM2.5 source profile from fireworks emissions was characterized by a high abundance of potassium (K, 28%) and water soluble potassium (K+, 23%), with other contributions SO42− (20%), Cl− (13%), S (9%), Mg2+ (3%), Ba (3%), and trace amounts (< 1%) of Mn, Cu, Zn, and Pb. Positive matrix factorization (PMF) found that firework contributions to PM2.5 peaked at 28% during the “Slightly Polluted” days (February 10–13), compared to only 3% and 7% during the initial “Good” and final “Good/Excellent/Floating Dust Aloft (FDA)” days, respectively. This study provides an integrated framework to quantitatively resolve firework emission profile and highlight key markers. Study supports targeted regulation of pyrotechnics to mitigate air pollution.
AB - Air pollutants released from firework burning pose a potential threat to air quality and human health. To identify their emission characteristics and contributions, we conducted in-situ continuous measurements of the six criteria pollutants (i.e., NO2, SO2, O3, CO, PM2.5, and PM10) along with chemical speciation in Chengdu during the Chinese New Year period (February 8–17, 2024). Results showed mass concentrations of PM2.5, PM10, and SO2 increased by about 91%, 84%, and 52%, respectively, during the firework burning period (FBP) compared to the non-firework burning period (NFBP). During the peak burning hours, PM2.5 varied substantially in composition. Characteristic radar chart (CRC) analysis and relative enrichment calculations identified Ba, Mg2+, Cu, and K+ (elemental K) as key markers, with relative enrichments exceeding 4. Firework-related chemical components accounted for about 70% of species contributions to PM2.5 mass. The PM2.5 source profile from fireworks emissions was characterized by a high abundance of potassium (K, 28%) and water soluble potassium (K+, 23%), with other contributions SO42− (20%), Cl− (13%), S (9%), Mg2+ (3%), Ba (3%), and trace amounts (< 1%) of Mn, Cu, Zn, and Pb. Positive matrix factorization (PMF) found that firework contributions to PM2.5 peaked at 28% during the “Slightly Polluted” days (February 10–13), compared to only 3% and 7% during the initial “Good” and final “Good/Excellent/Floating Dust Aloft (FDA)” days, respectively. This study provides an integrated framework to quantitatively resolve firework emission profile and highlight key markers. Study supports targeted regulation of pyrotechnics to mitigate air pollution.
KW - Characteristic radar chart
KW - Chinese new year
KW - Fireworks
KW - Positive matrix factorization
KW - Source profile
UR - https://www.scopus.com/pages/publications/105046903841
U2 - 10.1007/s44408-026-00139-w
DO - 10.1007/s44408-026-00139-w
M3 - 文章
AN - SCOPUS:105046903841
SN - 1680-8584
VL - 26
JO - Aerosol and Air Quality Research
JF - Aerosol and Air Quality Research
IS - 8
M1 - 60
ER -