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高强度抗生物污染纳米纤维膜用于增强海水和废水中铀的回收。

High-strength and anti-biofouling nanofiber membranes for enhanced uranium recovery from seawater and wastewater.

机构信息

State Key Laboratory of Marine Resource Utilization in South China Sea, Hainan University, Haikou 570228, PR China.

State Key Laboratory of Marine Resource Utilization in South China Sea, Hainan University, Haikou 570228, PR China.

出版信息

J Hazard Mater. 2022 Aug 15;436:128983. doi: 10.1016/j.jhazmat.2022.128983. Epub 2022 Apr 22.

DOI:10.1016/j.jhazmat.2022.128983
PMID:35525216
Abstract

Ultrathin fibers can increase the contact area between adsorbents and seawater during the uranium extraction process; however, their construction usually aggravates the complex spinning technology and lowers their mechanical strength. Meanwhile, high strength and antifouling ability are essential for ocean adsorbents to withstand the complex natural environment and microbial systems. Herein, we design high-strength and anti-biofouling poly(amidoxime) nanofiber membranes (HA-PAO NFMs) via a supramolecular crosslinking. Bacterial cellulose supplies the NFMs with ultrathin fiber structure, and large amounts of adsorption ligands are immobilized on the framework via the crosslinking with antibacterial ions. Thus, different from other fibers, HA-PAO NFMs achieve ultrathin diameter (20-30 nm), high BET area (51 m g), and excellent mechanical strength (13.6 MPa). The uranium adsorption capacity reaches to 409 mg-U/g-Ads in the simulated seawater, 99.2% uranium can be removed from the U-contained wastewater, and the adsorption process can be observed by the naked eye due to the significant color changes. The inhibition zones indicate their excellent anti-biofouling ability, which contributes to 1.83 times more uranium extraction amount from natural seawater than the non-antifouling adsorbents. Furthermore, they display a long service life and can be large-scale prepared, and the HA-PAO NFMs have potential in the massive uranium recovery.

摘要

超细丝纤维在铀提取过程中可以增加吸附剂与海水的接触面积;然而,它们的结构通常会加剧复杂的纺丝技术,并降低其机械强度。同时,高强度和抗污能力对于海洋吸附剂来说是必不可少的,以承受复杂的自然环境和微生物系统。在此,我们通过超分子交联设计了高强度和抗生物污染的聚(偕胺肟)纳米纤维膜(HA-PAO NFMs)。细菌纤维素为 NFMs 提供了超细丝纤维结构,并且大量的吸附配体通过与抗菌离子的交联固定在骨架上。因此,与其他纤维不同,HA-PAO NFMs 实现了超小径(20-30nm)、高 BET 面积(51m²/g)和优异的机械强度(13.6MPa)。在模拟海水中的铀吸附容量达到 409mg-U/g-Ads,99.2%的含铀废水中的铀可以被去除,并且由于明显的颜色变化可以通过肉眼观察到吸附过程。抑菌圈表明它们具有优异的抗污能力,这使得从天然海水中提取铀的量比非抗污吸附剂多 1.83 倍。此外,它们具有较长的使用寿命,可以大规模制备,HA-PAO NFMs 在大规模回收铀方面具有潜力。

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引用本文的文献

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