Institute of Plan Nutrition, Resources and Environment, Beijing Academy of Agriculture and Forestry Sciences, Beijing 100097, China.
Qujing Soil Fertilizer Station, Yunnan 655000, China.
J Hazard Mater. 2022 Oct 15;440:129726. doi: 10.1016/j.jhazmat.2022.129726. Epub 2022 Aug 8.
Combined pollution from microplastics (MPs) and other environmental pollutants has attracted considerable attention. Few studies have investigated the effects of polyurethane (PU) and polypropylene (PP) MPs on available Cadmium(Cd) in different soil types. Here, PU and PP additions affected available Cd and reduced its concentration in soil (P > 0.05). PU and PP reduced available Cd more strongly in clay soil than that in sandy soil. PU and PP improved the soil porous structure and voids and significantly increased the Zeta potential in clay soil (P < 0.05). Dissolved organic carbon and pH in clay soil were significantly negatively correlated with available Cd after PU and PP addition, and Fe(Ⅱ) was significantly negatively correlated with available Cd in sandy soil. PU and PP addition promoted the C-C, CO, and C-H functional groups and FeO, FeOOH, and FeO formation and influenced the effective Cd through adsorption and precipitation. CdCO formation and clay mineral adsorption, and iron oxide formation, influenced the effective Cd in clay and sandy soils, respectively. PU and PP influenced the effective state of Cd by affecting bacterial communities related to carbon and iron cycles. This study is significant for assessing the environmental risks of MPs combined with heavy metals in different soils and their mechanisms.
微塑料 (MPs) 和其他环境污染物的联合污染引起了相当大的关注。很少有研究调查过聚氨酯 (PU) 和聚丙烯 (PP) MPs 对不同土壤类型中可利用镉 (Cd) 的影响。在这里,PU 和 PP 的添加影响了可利用的 Cd,并降低了土壤中的 Cd 浓度 (P > 0.05)。PU 和 PP 在粘性土壤中比在沙质土壤中更强烈地降低了可利用的 Cd。PU 和 PP 改善了土壤的多孔结构和空隙,并显著增加了粘性土壤中的 Zeta 电位 (P < 0.05)。添加 PU 和 PP 后,粘性土壤中的溶解有机碳和 pH 与可利用的 Cd 呈显著负相关,而沙质土壤中的 Fe(Ⅱ)与可利用的 Cd 呈显著负相关。PU 和 PP 的添加促进了 C-C、CO 和 C-H 官能团以及 FeO、FeOOH 和 FeO 的形成,并通过吸附和沉淀影响了有效 Cd。CdCO 的形成和粘土矿物的吸附以及氧化铁的形成分别影响了粘性土壤和沙质土壤中的有效 Cd。PU 和 PP 通过影响与碳和铁循环有关的细菌群落来影响 Cd 的有效状态。这项研究对于评估不同土壤中 MPs 与重金属的联合环境风险及其机制具有重要意义。