Department of Chemistry, Faculty of Sciences, Tarbiat Modares University, P.O. Box 14115-175, Tehran, Iran.
Department of Chemistry, College of Sciences, Shiraz University, Shiraz, 71454, Iran.
J Hazard Mater. 2021 Feb 5;403:123696. doi: 10.1016/j.jhazmat.2020.123696. Epub 2020 Aug 30.
Designing porous and functionalized adsorbents and achieving high efficiency in heavy metals removal from wastewater is in the spotlight of environmental science. On the other hand, upon removal, adsorbents are still highly hazardous requiring that great care be taken in its packaging, transporting and storing. A fundamental route in the synthesis of functional extended structures is the ability to combine different chemical entities in a controlled way in order to achieve high performance. Herein, we report the systematic design of dual-functionalized metal organic framework (TMU-81) by incorporating sulfonyl and amide groups for the removal of Cd(II), Cu(II) and Cr(II) ions from simulated aqueous solutions. TMU-81 showed significant enhancement in heavy metals uptake suggesting that the strong host - guest interactions between cations and the donor sites play a major role in adsorption process. The maximum adsorption capacity for Cd was 526 mg/g which is among the highest values reported for similar MOFs and other porous materials. The good performance in uptake and selectivity of TMU-81 can be attributed to the network structure that shaping the void, create mono-dimensional channels, decorated by exposed oxygen atom sites selective for Cadmium ion. Environmental "compatibility" of a treated MOFs was studied in order to evaluate its possible recycling as a new template for different applications by using pyrolysis method. Engineering of the pore surface provides a potential for MOF with a hybrid interface to act as a versatile tool for the design of multifunctional nanoparticles to meet specific application requirements.
设计多孔和功能化的吸附剂,并实现从废水中高效去除重金属,这是环境科学的关注焦点。另一方面,在去除重金属后,吸附剂仍然具有高度危害性,因此在包装、运输和储存过程中需要格外小心。在功能扩展结构的合成中,一个基本途径是能够以可控的方式将不同的化学实体结合在一起,以实现高性能。在此,我们通过引入磺酰基和酰胺基来系统地设计双功能化金属有机骨架(TMU-81),以去除模拟水溶液中的 Cd(II)、Cu(II) 和 Cr(II)离子。TMU-81 对重金属的去除能力显著增强,表明阳离子与供体位点之间的强主客体相互作用在吸附过程中起着主要作用。Cd 的最大吸附容量为 526 mg/g,这是类似 MOFs 和其他多孔材料中报道的最高值之一。TMU-81 的高吸附容量和选择性性能可归因于其网络结构,该结构塑造了空隙,形成了一维通道,并由暴露的氧原子位点选择性地配位 Cd 离子。研究了处理后的 MOFs 的环境“相容性”,以便通过使用热解方法评估其作为不同应用的新型模板进行再循环的可能性。对孔表面进行工程设计,为 MOF 提供了一个混合界面的潜力,使其能够作为多功能纳米粒子的设计的通用工具,以满足特定应用的要求。