TY - JOUR
T1 - Tracing sources of sedimentary soot
T2 - The underestimated role of liquid fossil fuels in North China
AU - Tang, Yalan
AU - Han, Yongming
AU - Yao, Peng
AU - Liu, Zeyu
AU - Yan, Dongna
AU - Schneider, Tobias
AU - Lei, Dewen
AU - Jiang, Hong
AU - Ni, Haiyan
AU - Dusek, Ulrike
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/8/5
Y1 - 2025/8/5
N2 - Soot emissions significantly impact air pollution and climate change, especially in regions like North China, where industrialization has driven energy shifts. Understanding historical soot sources is crucial for improving emission inventories and developing mitigation strategies. Traditional methods struggle to capture the complexity and temporal shifts in combustion sources. This study uses dual-carbon isotopes (δ¹³C and F¹⁴C) in soot from Gonghai Lake to trace soot emission sources in North China over the past 130 years. The results reveal that after 1949, soot emissions from fossil fuel sources increased from 31.64 % to 67.85 %, with fluxes more than tripling, reflecting a transition from biomass burning to fossil fuel combustion driven by industrialization. Despite pollution control efforts, soot fluxes from both biomass and fossil fuel sources have not shown a significant decline in the 21st century. Notably, since the 1980s, soot flux from liquid fossil fuels has been comparable to that from coal, despite their lower consumption. This suggests that the contribution of liquid fossil fuels to soot emissions may have been underestimated in emission inventories. This study provides a more detailed, quantifiable understanding of historical soot emission sources and highlights the role of geochemical constraints in refining emission inventories and evaluating mitigation effectiveness.
AB - Soot emissions significantly impact air pollution and climate change, especially in regions like North China, where industrialization has driven energy shifts. Understanding historical soot sources is crucial for improving emission inventories and developing mitigation strategies. Traditional methods struggle to capture the complexity and temporal shifts in combustion sources. This study uses dual-carbon isotopes (δ¹³C and F¹⁴C) in soot from Gonghai Lake to trace soot emission sources in North China over the past 130 years. The results reveal that after 1949, soot emissions from fossil fuel sources increased from 31.64 % to 67.85 %, with fluxes more than tripling, reflecting a transition from biomass burning to fossil fuel combustion driven by industrialization. Despite pollution control efforts, soot fluxes from both biomass and fossil fuel sources have not shown a significant decline in the 21st century. Notably, since the 1980s, soot flux from liquid fossil fuels has been comparable to that from coal, despite their lower consumption. This suggests that the contribution of liquid fossil fuels to soot emissions may have been underestimated in emission inventories. This study provides a more detailed, quantifiable understanding of historical soot emission sources and highlights the role of geochemical constraints in refining emission inventories and evaluating mitigation effectiveness.
KW - Dual-carbon isotopes
KW - Lake sediment
KW - Liquid fossil fuels
KW - Soot emissions
KW - Source tracing
UR - https://www.scopus.com/pages/publications/105003917685
U2 - 10.1016/j.jhazmat.2025.138408
DO - 10.1016/j.jhazmat.2025.138408
M3 - 文章
C2 - 40306241
AN - SCOPUS:105003917685
SN - 0304-3894
VL - 493
JO - Journal of Hazardous Materials
JF - Journal of Hazardous Materials
M1 - 138408
ER -