| Literature DB >> 28272435 |
Shouzheng Su1, Qi Liu2,3, Jingyuan Liu1, Hongsen Zhang4, Rumin Li1, Xiaoyan Jing1, Jun Wang1,2,3.
Abstract
Benefiting from strong coordination ability and unique vascular structure, EDTA modified L. cylindrica opens up an alternative way for uranium recovery from seawater. However, limitations, such as poor adsorption capacity and slow adsorption rate due to low graft ratio of EDTA via one-step esterification block its practical application. Here, a strategy for increasing the graft ratio is proposed in order to improve the adsorption performance. The strategy initially involves immobilization of epichlorohydrin (EPI) onto L. cylindrica and then ethylenediamine (EDA) is introduced via facile ring-opening reaction. EPI and EDA serve as a bridge between L. cylindrica and EDTA. The graft ratio is promoted (15.01 to 21.44%) contributing to the smaller steric hindrance of EPI and EDA than EDTA and improvement in adsorption performance. In addition, the adsorbent prepared by the new strategy exhibits excellent adsorption properties in simulated seawater.Entities:
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Year: 2017 PMID: 28272435 PMCID: PMC5341152 DOI: 10.1038/srep44156
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Steps involved in the preparation of EDTA modified LC by two routes.
Figure 2Digital photos of LC (a), ELC1 (b) and ELC2 (c); SEM of LC (d), ELC1 (e) and ELC2 (f); EDX spectra of LC (g), ELC1 (h) and ELC2 (i).
Elemental analysis results of raw-LC, LC, ELC1, epoxy-LC, amino-LC, and ELC2.
| Compound | Elemental content % | ||
|---|---|---|---|
| C | N | H | |
| LC | 43.81 | 0.23 | 6.14 |
| ELC1 | 42.43 | 0.66 | 6.03 |
| epoxy-LC | 44.13 | 0.19 | 6.12 |
| amino-LC | 43.97 | 0.93 | 6.33 |
| ELC2 | 42.24 | 1.75 | 6.00 |
Figure 3Effect of contact time of ELC1 and ELC2 (A) and their corresponding pseudo second-order kinetics (B); effect of initial concentration of ELC1 and ELC2 (C) and their corresponding Langmuir adsorption isotherms (D).
Figure 4Regeneration studies of ELC1 and ELC2.
Figure 5The adsorption rate of U (VI) by ELC2 in simulated seawater.
Figure 6U(VI) adsorption on ELC2 in simulated seawater (I); U(VI) adsorb on the coordination layer of vessel walls (II); water flows from vessel (III).