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基于 CMC 涂层的镧功能化海绵吸附剂的制备及其对磷的有效去除。

The adsorbent preparation of lanthanum functionalized sponge based on CMC coating for effective phosphorous removal.

机构信息

School of Chemical and Environmental Engineering, Wuhan Polytechnic University, Wuhan, 430023, People's Republic of China.

Wuhan Center Engineering Inspection Co., Ltd, Wuhan, 430015, People's Republic of China.

出版信息

Environ Sci Pollut Res Int. 2023 Nov;30(52):112686-112694. doi: 10.1007/s11356-023-30293-2. Epub 2023 Oct 14.

Abstract

Eutrophication is a severe worldwide concern caused by excessive phosphorus release. Thus, significant efforts have been made to develop phosphorus removal techniques, particularly by nanomaterial adsorption. However, because of the limitations associated with nanoparticles including easy agglomeration, and separation challenges, a novel nanocomposite adsorbent with great adsorption performance is urgently required. A sponge adsorbent (MS-CMC@La) was developed in this study to remove phosphorus using melamine sponge (MS), LaCl, and sodium carboxymethyl cellulose (CMC). The results of SEM/EDS, FTIR, and XPS demonstrated that La was well-dispersed on MS-CMC@La. Adsorption isotherm and kinetics met with the Langmuir model (R = 0.981) and the pseudo-second-order kinetics (R = 0.989), respectively. The maximum adsorption capacity of MS-CMC@La was found to be 15.28 mg/g; the material exhibited excellent selectivity toward phosphorus in the presence of coexisting anion except of F; the adsorption behavior was greatly impacted by pH. Furthermore, the electrostatic attraction, ligand exchange and inner-sphere coordination regulate the phosphate adsorption mechanism, with inner-sphere coordination dominating. In summary, the nano-enriched materials developed in this study are capable of facilitating the application of functionalized sponges in the field of wastewater.

摘要

富营养化是由过量磷释放引起的严重的全球性问题。因此,人们已经做出了巨大努力来开发除磷技术,特别是通过纳米材料吸附。然而,由于纳米颗粒的限制,包括易于团聚和分离的挑战,因此迫切需要具有良好吸附性能的新型纳米复合材料吸附剂。本研究开发了一种使用三聚氰胺海绵(MS)、LaCl 和羧甲基纤维素钠(CMC)去除磷的海绵吸附剂(MS-CMC@La)。SEM/EDS、FTIR 和 XPS 的结果表明,La 很好地分散在 MS-CMC@La 上。吸附等温线和动力学分别符合朗缪尔模型(R = 0.981)和拟二级动力学(R = 0.989)。MS-CMC@La 的最大吸附容量为 15.28 mg/g;该材料在存在共存阴离子(除 F 外)的情况下对磷表现出优异的选择性;吸附行为受 pH 值的影响很大。此外,静电吸引、配体交换和内球配位调节磷酸盐吸附机制,其中内球配位占主导地位。总之,本研究中开发的纳米富集材料能够促进功能化海绵在废水处理领域的应用。

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