Desorption of rare earth elements biosorbed on Euglena mutabilis suspensions and biofilms

IF 1.6 4区 工程技术 Q3 ENGINEERING, CHEMICAL Canadian Journal of Chemical Engineering Pub Date : 2024-05-21 DOI:10.1002/cjce.25344
Mitchell T. E. Zak, Nicolas A. R. Carunungan, Vladimiros G. Papangelakis, D. Grant Allen
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Abstract

Increasing demand for rare earth elements (REEs) has stimulated research on novel recovery methods from sources like industrial effluents. Our recent study demonstrated that algal biofilms are good candidates for the adsorption of REEs and that the extracellular polymeric substances (EPS) within the biofilm were a key accumulator of REEs. In this work, we measured the desorption kinetics, extents, and selectivity of REEs from the algae Euglena mutabilis in suspensions and biofilms using aqueous solutions of HCl at pH between 1.5 and 4, and Na2EDTA at pH 5. We examined the potential for reusing suspended and biofilm biomass for repeated adsorption–desorption cycles. The desorption kinetics were similar for suspensions and biofilms, with equilibrium being reached within 20 min. The extent of desorption was higher in biofilms with 86% and 95% desorption, compared to suspensions which had 72% and 74% desorption using HCl and Na2EDTA, respectively. We postulate that the difference between suspensions and biofilms is attributed to the binding sites in the EPS matrix of the biofilm being more readily protonated than those at the algal cell wall surface. Heavy REEs were found to preferentially desorb at pH 4 over lighter REEs. After 3 repeated adsorption–desorption cycles, the adsorption capacity of biofilms increased by 280% and 80% using HCl and Na2EDTA, respectively, compared to an 80% decrease in biosorption capacity for the suspension. The increase in biofilm biosorption capacity was attributed to the simultaneous desorption of divalent cations alongside REEs from the EPS increasing the number of available binding sites.

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生物吸附在变异曙红虫悬浮液和生物膜上的稀土元素的解吸作用
对稀土元素(REEs)日益增长的需求刺激了从工业废水等来源进行新型回收方法的研究。我们最近的研究表明,藻类生物膜是吸附稀土元素的良好候选材料,而且生物膜中的胞外聚合物物质(EPS)是稀土元素的主要积聚物。在这项研究中,我们使用 pH 值介于 1.5 和 4 之间的盐酸水溶液以及 pH 值为 5 的 Na2EDTA 水溶液,测量了变异鳗鲡悬浮液和生物膜中 REEs 的解吸动力学、范围和选择性。我们研究了重复使用悬浮液和生物膜生物质进行反复吸附-解吸循环的可能性。悬浮液和生物膜的解吸动力学相似,都在 20 分钟内达到平衡。生物膜的解吸程度更高,分别达到 86% 和 95%,而悬浮液使用盐酸和 Na2EDTA 的解吸程度分别为 72% 和 74%。我们推测,悬浮液和生物膜之间的差异是由于生物膜 EPS 基质中的结合位点比藻类细胞壁表面的结合位点更容易质子化。在 pH 值为 4 时,重型 REEs 比轻型 REEs 更容易解吸。经过 3 次重复的吸附-解吸循环后,使用盐酸和 Na2EDTA,生物膜的吸附能力分别提高了 280% 和 80%,而悬浮液的生物吸附能力则降低了 80%。生物膜生物吸附容量的增加归因于二价阳离子和 REEs 同时从 EPS 中解吸,增加了可用结合位点的数量。
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来源期刊
Canadian Journal of Chemical Engineering
Canadian Journal of Chemical Engineering 工程技术-工程:化工
CiteScore
3.60
自引率
14.30%
发文量
448
审稿时长
3.2 months
期刊介绍: The Canadian Journal of Chemical Engineering (CJChE) publishes original research articles, new theoretical interpretation or experimental findings and critical reviews in the science or industrial practice of chemical and biochemical processes. Preference is given to papers having a clearly indicated scope and applicability in any of the following areas: Fluid mechanics, heat and mass transfer, multiphase flows, separations processes, thermodynamics, process systems engineering, reactors and reaction kinetics, catalysis, interfacial phenomena, electrochemical phenomena, bioengineering, minerals processing and natural products and environmental and energy engineering. Papers that merely describe or present a conventional or routine analysis of existing processes will not be considered.
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