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January 23, 2026Forests0 citationsOpen Access

Retention of Atmospheric Particulate Matter and Dissolved Trace Elements by Picea crassifolia Forest in the Qilian Mountains in Northwest China

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WZWeitao ZengJCJiechang ChenYZYan Zhang

Key Points

  • This research aims to investigate how Picea crassifolia forests retain airborne particulate matter and dissolved trace elements.
  • Utilized an aerosol regenerator to assess particulate matter retention by Picea crassifolia needles.
  • Measured dissolved trace elements Na, Zn, Pb, and Cd in water samples from the Tianlaochi catchment.
  • Compared retention rates of particulate matter between two catchments, Tianlaochi and Sancha.
  • Retention of airborne particulate matter was generally lower in Tianlaochi catchment compared to Sancha in summer and autumn.
  • In spring, the Tianlaochi catchment exhibited higher rates of total suspended particles than Sancha.
  • Picea crassifolia needles demonstrated variable absorption levels for Na, Zn, Cd, and Pb, with Na showing the highest absorption.

Abstract

Forest canopies effectively remove airborne particles, reducing the frequency of atmospheric haze and improving air quality as well as playing a crucial role in maintaining human health. In this study, we examined the retention of particulate matter by Picea crassifolia Kom. (P. crassifolia) needles using an aerosol regenerator in two typical catchments, while the concentrations of dissolved trace elements (Na, Zn, Pb, and Cd) were determined only in the Tianlaochi catchment. The results showed that the retention of airborne particles was lower in the Tianlaochi catchment (e.g., total suspended particles (TSP): 0.0049 μg cm−2 in summer) than in the Sancha catchment (e.g., TSP: 0.0145 μg cm−2) in summer and autumn, while the opposite trend was found in winter and spring, with Tianlaochi catchment reaching higher TSP levels (0.0230 μg cm−2 in spring) compared to Sancha catchment (0.0205 μg cm−2). The big tree exhibited the highest particulate retention, with a maximum flux of 84.870 μg cm−2, indicating it was the most effective at particle trapping. The highest Na, Zn, Cd, and Pb values absorbed by the needle samples were 1.794 mg L−1, 11.345 μg L−1, 0.081 μg L−1, and 4.316 μg L−1, respectively. P. crassifolia needles absorbed more Na, Zn, and Cd in July and August than in June. The absorption capacity of the needles decreased in the order Na > Zn > Pb > Cd. P. crassifolia forest can effectively reduce airborne particulate matter. Our study provides a theoretical foundation to examine the role of forest ecosystems in the retention of atmospheric particulate matter in the Qilian Mountains region.

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Cite This Study

Zeng et al. (2026) studied this question.

synapsesocial.com/papers/69730f59c8125b09b0d1f26chttps://doi.org/10.3390/f17010140
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