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Cyanobacterial promoted enrichment of rare earth elements europium, samarium and neodymium and intracellular europium particle formation

机译:蓝藻促进稀土元素铕的富集,钐和钕和细胞内铕颗粒形成

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In the recovery of rare earth elements (REE) microbial biosorption has shown its theoretical ability as an extremely economically and environmentally friendly production method in the last few years. To evaluate the ability of two cyanobacterial strains, namely Anabaena spec. and Anabaena cylindrica to enrich dissolved trivalent REE, a simple protocol was followed. The REE tested in this study include some of the most prominent representatives, such as europium (Eu), samarium (Sm) and neodymium (Nd). Within the experiments, a fast decrease of the REE3+ concentration in solution was tracked by inductively coupled plasma mass spectrometry (ICP-MS). It revealed an almost complete (>99%) biosorption of REE3+ within the first hour after the addition of metal salts. REE3+ uptake by biomass was checked using laser-induced breakdown spectroscopy (LIBS) and showed that all three selected REE3+ species were enriched in the cyanobacterial biomass and the process is assigned to a biosorption process. Although the biomass stayed alive during the experiments, up to that, a distinction whether the REE3+ was intra- or extracellularly sorbed was not possible, since biosorption is a metabolism independent process which occurs on living as well as non-living biomass. For europium it was shown by TEM that electron dense particles, presumably europium particles with particle sizes of about 15 nm, are located inside the vegetative cyanobacterial cells. This gave clear evidence that Eu3+ was actively sorbed by living cyanobacteria. Eu3+ biosorption by cell wall precipitation due to interaction with extracellular polysaccharides (EPS) could therefore be excluded. Finally, with XRD analysis it was shown that the detected europium particles had an amorphous instead of a crystalline structure. Herein, we present a fast biosorptive enrichment of the rare earth elements europium, samarium and neodymium by Anabaena spec. and Anabaena cylindrica and for the first time the subsequent formation of intracellular europium particles by Anabaena spec.
机译:在稀土元素(REE)的回收中,微生物生物吸附在过去几年中显示了其理论能力,作为一种极其经济和环保的生产方法。评估两种蓝细菌菌株的能力,即Anabaena规范。和Anabaena cylindrica丰富溶解的三价ree,遵循简单的协议。本研究中测试的REE包括一些最突出的代表,如铕(EU),钐(SM)和钕(ND)。在实验中,通过电感耦合等离子体质谱(ICP-MS)跟踪溶液中REE3 +浓度的快速降低。在加入金属盐后的第一小时内,它揭示了几乎完全(> 99%)的Ree3 +生物吸附。使用激光诱导的击穿光谱(Libs)检查通过生物量的REE3 +摄取,并显示所有三种选定的REE3 +物种富集在蓝藻生物质中,并将该方法分配给生物吸附过程。虽然生物量在实验期间保持活力,但截至于,不可能区分REE3 +是不可能的,因为生物吸附是一种造成的代谢独立的过程,这些过程发生在生活和非生物化上。对于铕而言,通过TEM表示,电子致密颗粒,大概是具有约15nm的粒度的铕颗粒位于营养蓝细菌细胞内。这给了明确的证据证明Eu3 +因活性天生孢子被激活而被激起。因此,可以排除由于与细胞外多糖的相互作用引起的细胞壁沉淀的Eu3 +生物吸附。最后,通过XRD分析,显示检测到的铕颗粒具有无定形而不是结晶结构。在此,我们通过Anabaena规范呈现了稀土元素铕,钐和钕的快速生物化富集。和Anabaena Collindrica,并首次通过Anabaena规范随后形成细胞内铕颗粒。

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    《RSC Advances》 |2019年第56期|共13页
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  • 正文语种 eng
  • 中图分类 化学;
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