Qu Yihe, Zhao Li, Jin Zhenghai, Yang Haoran, Tu Chengqi, Che Feifei, Russel Mohammad, Song Xinshan, Huang Wei
State Environmental Protection Engineering Center for Pollution Treatment and Control in Textile Industry, College of Environmental Science and Engineering, Donghua University, Shanghai, 201620, PR China; School of Ocean Science and Technology, Dalian University of Technology, Liaoning Province, Panjin, 124221, PR China.
National Engineering Laboratory for Lake Pollution Control and Ecological Restoration, Chinese Research Academy of Environmental, Beijing, 100012, PR China.
Chemosphere. 2023 Feb;313:137315. doi: 10.1016/j.chemosphere.2022.137315. Epub 2022 Nov 18.
Attapulgite co-modified by lanthanum-iron (MT-LHMT) was used to study its effectiveness and mechanism in controlling phosphorus release from sediments. MT-LHMT has high adsorption capacity for phosphate and the maximum adsorption capacity of MT-LHMT to phosphate can reach 75.79 mg/g. The mechanism mainly involved electrostatic action, surface precipitation and ligand exchange between MT-LHMT bonded hydroxyl and phosphate to form La-O-P and Fe-O-P inner-sphere complexes. MT-LHMT has excellent adsorption performance in the pH range of 3-8. In addition to HCO, CO and HA had a negative effect on the phosphorus removal of MT-LHMT, while NO, Cl, SO, K, Ca and Mg had a positive or no effect on phosphorus removal. MT-LHMT significantly reduced the risk of phosphorus release from overlying water in different dose effects and covering methods, as well as the unstable inactivation of flowing phosphorus, sediment dissolved reactive phosphorus (DRP) and available phosphorus with medium diffusion gradient in thin film in the sediment-water interface (Labile-P). The MT-LHMT capping wrapped with fabric can reduce the risk of nitrogen release from sediment to overlying water more than only MT-LHMT capping. The results of this study showed that the MT-LHMT capping wrapped with fabric has high potential and can be used as an active capping material to manage the nitrogen and phosphorus load in surface water.
采用镧铁共改性凹凸棒土(MT-LHMT)研究其控制沉积物磷释放的效果及机制。MT-LHMT对磷酸盐具有较高的吸附容量,其对磷酸盐的最大吸附容量可达75.79 mg/g。作用机制主要涉及静电作用、表面沉淀以及MT-LHMT键合羟基与磷酸盐之间的配体交换,以形成La-O-P和Fe-O-P内球络合物。MT-LHMT在pH值为3-8的范围内具有优异的吸附性能。除HCO外,CO和HA对MT-LHMT的除磷有负面影响,而NO、Cl、SO、K、Ca和Mg对除磷有正面或无影响。MT-LHMT在不同剂量效应和覆盖方式下显著降低了上覆水磷释放风险,以及沉积物-水界面中具有中等扩散梯度的薄膜内不稳定失活的流动磷、沉积物溶解态活性磷(DRP)和有效磷(易变磷)。用织物包裹的MT-LHMT覆盖比仅MT-LHMT覆盖更能降低沉积物向上覆水释放氮的风险。本研究结果表明,用织物包裹的MT-LHMT覆盖具有很大潜力,可作为一种活性覆盖材料来管理地表水的氮磷负荷。