School of Resources, Environment and Materials, Guangxi University, Nanning, China.
School of Resources, Environment and Materials, Guangxi University, Nanning, China; State Key Laboratory of Featured Metal Materials and Life-cycle Safety for Composite Structures, Guangxi University, Nanning, China.
Chemosphere. 2023 Oct;338:139618. doi: 10.1016/j.chemosphere.2023.139618. Epub 2023 Jul 22.
The mercury in water bodies has posed a great threat to the environment and humans, and removing mercury and purifying wastewater has become a global environmental issue. Adopting Zn(II) coordination polymers (Zn-CPs) emerged as a new approach, however, the kind of Zn-CPs, which solely consisted of amino groups, exhibited unsatisfactory performance in capturing Hg(II) at a low level and causing the subsequent leaching of Zn(II) after adsorption. In this study, we fabricated the thiol-modified Zn-based coordination polymers (Zn-CPs-SH) through a one-step solvothermal reaction to efficiently capture Hg(II) from wastewater. Its preeminent adsorption performance could be maintained across a broad range of pH (2-7), ion strength (Cl, SO, and NO at 0-10,000 mg/L), and dissolved organic matter (0-100 mg/L). The impressive properties, including fast kinetics (k∼1.01 × 10 L/min), outstanding adsorption capacity (1278.72 mg/g, 298 K), superior selectivity (K∼2.3 × 10 mL/g), and excellent regeneration capability (R = 93.54% after 5 cycles), were attributed to the ultra-abundance of adsorption sites donating from thiol groups, which was revealed by XPS analysis, DFT calculations, and molecular orbital theory. Noteworthy, the high practical application potential of Zn-CPs-SH was demonstrated by its outstanding Hg(II) removal efficiency (R ≥ 99.10%) in various Hg(II)-spiked water matrices, e.g., tap water, river water, and industrial wastewater. Importantly, the residual Hg(II) in the treated water declined to the ppb level without any Zn(II) leaching. Overall, it is highly anticipated that the incorporation of Zn-CPs-SH would facilitate the practical implementation of highly efficient Hg(II) removal in wastewater treatment owing to its exhibiting high selective affinity, superior adsorption capacity, and enhanced efficiency.
水体中的汞对环境和人类构成了极大威胁,去除汞并净化废水已成为全球性的环境问题。采用 Zn(II)配位聚合物(Zn-CPs)作为一种新方法应运而生,然而,仅由氨基组成的 Zn-CPs 在低水平下捕获 Hg(II)的效果并不理想,并且在吸附后会导致 Zn(II)的随后浸出。在这项研究中,我们通过一步溶剂热反应制备了巯基修饰的基于 Zn 的配位聚合物(Zn-CPs-SH),以有效地从废水中捕获 Hg(II)。其优越的吸附性能可在广泛的 pH 值(2-7)、离子强度(Cl、SO 和 NO 在 0-10,000 mg/L 之间)和溶解有机物(0-100 mg/L)范围内保持。其令人印象深刻的特性包括快速动力学(k∼1.01×10 L/min)、出色的吸附容量(1278.72 mg/g,298 K)、卓越的选择性(K∼2.3×10 mL/g)和出色的再生能力(5 次循环后 R = 93.54%),这归因于硫醇基团提供的超丰富吸附位点,这一点通过 XPS 分析、DFT 计算和分子轨道理论得到了揭示。值得注意的是,Zn-CPs-SH 在各种含 Hg(II)的水样(如自来水、河水和工业废水)中表现出出色的 Hg(II)去除效率(R ≥ 99.10%),证明了其具有很高的实际应用潜力。重要的是,处理后的水中残留的 Hg(II)降至 ppb 级,没有任何 Zn(II)浸出。总体而言,由于 Zn-CPs-SH 具有高选择性亲和力、卓越的吸附容量和增强的效率,预计它的加入将促进高效去除废水中 Hg(II)的实际应用。