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Adsorption of Pb(II) by UV-aged microplastics and cotransport in homogeneous and heterogeneous porous media

Journal of Hazardous Materials 2024 46 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 60 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Bokun Chang, Xianbao Zhong, Tianhuan Yang, Bokun Chang, Bokun Chang, Bokun Chang, Bokun Chang, Tianhuan Yang, Bokun Chang, Bokun Chang, Bokun Chang, Zixuan Huang, Tianhuan Yang, Bokun Chang, Tianhuan Yang, Bokun Chang, Xiaodong Yang, Gang Cao, Jialong Lv Tianhuan Yang, Xiaodong Yang, Tianhuan Yang, Xianhui Fang, Xianbao Zhong, Xianbao Zhong, Xiaodong Yang, Xiaodong Yang, Xiaodong Yang, Xianhui Fang, Xianbao Zhong, Yajun Yang, Yajun Yang, Xiaodong Yang, Bokun Chang, Bokun Chang, Chenyang Xu, Wei Ding, Feinan Hu, Feinan Hu, Feinan Hu, Gang Cao, Feinan Hu, Jialong Lv Chenyang Xu, Jialong Lv Yajun Yang, Chenyang Xu, Wei Du, Wei Du, Zixuan Huang, Feinan Hu, Chenyang Xu, Yajun Yang, Jialong Lv Ling Qiu, Jialong Lv Jialong Lv Wei Du, Wei Du, Yajun Yang, Jialong Lv

Summary

Researchers found that microplastics aged by UV sunlight are better at absorbing and carrying lead (a toxic heavy metal) through soil and water than fresh microplastics. The aging process changes the microplastic surface in ways that make it grab onto more lead, potentially spreading this toxic metal further through the environment. This is relevant to human health because aged microplastics in the real world may be transporting more heavy metals into water supplies and food-growing soil than previously thought.

To investigate the adsorption effects of aged microplastics (MPs) on Pb(II) and their co-transport properties in homogeneous (quartz sand) and heterogeneous (quartz sand with apple branches biochar) porous media, we explored the co-transport of UV-irradiated aged MPs and coexisting Pb(II) along with their interaction mechanisms. The UV aging process increased the binding sites and electronegativity of the aged MPs' surface, enhancing its adsorption capacity for Pb(II). Aged MPs significantly improved Pb(II) transport through homogeneous media, while Pb(II) hindered the transport of aged MPs by reducing electrostatic repulsion between these particles and the quartz sand. When biochar, with its loose and porous structure, was used as a porous medium, it effectively inhibited the transport capacity of both contaminants. In addition, since the aged MPs cannot penetrate the column, a portion of Pb(II) adsorbed by the aged MPs will be co-deposited with the aged MPs, hindering Pb(II) transport to a greater extent. The transport experiments were simulated and interpreted using two-point kinetic modeling and the DLVO theory. The study results elucidate disparities in the capacity of MPs and aged MPs to transport Pb(II), underscoring the potential of biochar application as an effective strategy to impede the dispersion of composite environmental pollutants.

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