Key Laboratory for Water Quality and Conservation of the Pearl River Delta, Ministry of Education, School of Environmental Science and Engineering, Guangzhou University, Guangzhou 510006, China.
State Key Laboratory of Environmental Geochemistry, Institute of Geochemistry, Chinese Academy of Sciences, Guiyang 550081, China.
Sci Total Environ. 2020 May 15;717:137090. doi: 10.1016/j.scitotenv.2020.137090. Epub 2020 Feb 3.
Thallium (Tl) pollution has attracted environmental attention due to its high toxicity, thus the cleanup of Tl from the environment is of significance. Titanate nanomaterials (TNMs) with different morphologies can be synthesized via a hydrothermal reaction under different conditions but the knowledge of the Tl(I) removal by them is limited. Our results indicated that TNM prepared at 130 °C exhibited a nanotubular appearance and a longer reaction time resulted in the formation of perfect nanotube, while that prepared at 180 °C exhibited a nanowire-like arrangement. The nanotubular and nanowire-like TNMs possessed approximately excellent Tl(I) adsorption capacities, wide pH, and temperature application ranges but different adsorption kinetics. Inorganic ions influenced the Tl(I) removal and the inhibiting effect of heavy metal ions followed the sequence Pb(II) > Cu(II) > Cd(II) > Zn(II). The anti-interference ability and selectivity of wire-like TNMs for Tl(I) removal were higher than those of tubular TNMs. High Tl(I) uptakes of tubular and wire-like TNMs were driven by the electrostatic attraction, ion exchange with Na/H, and complexation with -ONa functional groups in the interlayers and Ti-OH on the surfaces of TNMs as well as microprecipitation; while their adsorption configurations were different. TNMs are promising for potential applications in Tl(I) elimination from wastewater due to the high adsorption capacity and regenerability. This work indicates that TNMs synthesized under different conditions have the similar Tl(I) adsorption performances and the preparation of TNMs used for Tl(I) removal has an undemanding synthesis condition.
铊(Tl)污染因其高毒性而引起了环境关注,因此,从环境中清除 Tl 具有重要意义。通过在不同条件下的水热反应,可以合成具有不同形态的钛酸盐纳米材料(TNMs),但人们对它们去除 Tl(I)的知识了解有限。我们的结果表明,在 130°C 下制备的 TNM 呈现出纳米管状外观,而较长的反应时间则导致形成完美的纳米管,而在 180°C 下制备的 TNM 则呈现出纳米线状排列。纳米管状和纳米线状 TNMs 具有相近的优异 Tl(I)吸附容量、较宽的 pH 和温度应用范围,但吸附动力学不同。无机离子会影响 Tl(I)的去除,重金属离子的抑制效果依次为 Pb(II)>Cu(II)>Cd(II)>Zn(II)。线状 TNMs 去除 Tl(I)的抗干扰能力和选择性高于管状 TNMs。管状和线状 TNMs 对 Tl(I)的高摄取是由静电吸引、与 Na/H 的离子交换以及层间-ONa 官能团和 TNMs 表面上的 Ti-OH 与配合以及微沉淀驱动的;同时,它们的吸附构型也不同。由于具有高吸附容量和可再生性,TNMs 有望在废水除 Tl(I)方面得到应用。这项工作表明,在不同条件下合成的 TNMs 具有相似的 Tl(I)吸附性能,且用于去除 Tl(I)的 TNMs 的制备条件要求不高。