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Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Nanoplastics Sign in to save

Influence of dissolved black carbon on the aggregation and deposition of polystyrene nanoplastics: Comparison with dissolved humic acid

Water Research 2021 79 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Yanghui Xu, Qin Ou, Qin Ou, Yanghui Xu, Yanghui Xu, Yanghui Xu, Yanghui Xu, Qin Ou, Qin Ou, Yanghui Xu, Yanghui Xu, Yanghui Xu, Yanghui Xu, Qin Ou, Yanghui Xu, Yanghui Xu, Yanghui Xu, Qin Ou, Qin Ou, Qin Ou, Qin Ou, Qin Ou, Qin Ou, Qiang He, Qiang He, Qiang He, Qin Ou, Qin Ou, Qin Ou, Qin Ou, Qin Ou, Xiaoliu Huangfu Qiang He, Qin Ou, Qin Ou, Jun Ma, Yanghui Xu, Zhengsong Wu, Xiaoliu Huangfu Qiang He, Qiang He, Jun Ma, Zhengsong Wu, Qiang He, Xiaoliu Huangfu Jun Ma, Qiang He, Qiang He, Xiaoliu Huangfu Qiang He, Jun Ma, Xiaoliu Huangfu

Summary

This study compared the effects of dissolved black carbon and humic acid on polystyrene nanoplastic aggregation and deposition, finding that black carbon more strongly stabilized nanoplastics in suspension, altering their environmental transport behavior.

Polymers

Dissolved black carbon (DBC), widely found in soil and water environments is likely to affect the transport of nanoplastics in aquatic environments. The aggregation and deposition behaviors of fresh and aged polystyrene nanoplastics (PSs) with and without DBC in NaCl solution were investigated by time-resolved dynamic light scattering (DLS) and quartz crystal microbalance with dissipation monitoring equipment (QCM-D) techniques. The results suggest that DBC can screen the surface charges of PSs by interacting with PSs through hydrogen bonding, hydrophobic interactions and π-π interactions, although they were negatively charged. DBC promoted the aggregation of PSs under relatively low ionic strengths, and it minimally affected the stability of PSs under high ionic strength. Deposition experiments showed that both DBC in salt solution and DBC adsorption on silica surface facilitated the deposition of fresh PSs while HA inhibited both deposition processes. After aging, PSs were more stable, and the effects of DBC and HA were weakened. This study investigated the influence mechanism of DBC on the aggregation and deposition behaviors, which provides new insights into the stability and transport of PSs in complex aquatic environments.

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