Removing heavy metal ions from wastewater by Chlorella sorokiniana coupled to manganese-doped magnetic ferrite nanoparticles

IF 6.6 Q1 ENGINEERING, ENVIRONMENTAL
Louie A. Lapeñas , Janire Peña-Bahamonde , Lúrima Uane Soares Faria , Mark Daniel G. de Luna , Debora F. Rodrigues
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Abstract

In this study, we investigated the benefit of combining Chlorella sorokiniana with manganese-containing ferrite nanoparticles (NPs) for heavy metal removal and cell harvesting. Our results demonstrate that the combination of non-toxic nanoparticles significantly enhances the heavy metal removal capacity of C. sorokiniana without affecting its growth. The microalgae combined with NPs was able to sequester Cr6+, Co2+, and Ni2+ from aqueous solutions and could remove these metals at a higher adsorption capacity and within a relatively short time than their individual counterparts, indicating a synergistic effect between the algal cells and the nanomaterials, where bioadsorption and chemisorption were the main players. Both biosorption and chemisorption capacities were found to be the highest for single-metal systems and decreased when coexisting ions were present in the solution. The adsorption of the heavy metals evaluated was better described by the pseudo-second order model than the pseudo-first order model, indicating that chemisorption dominated over physisorption. These characteristics suggest that the combination of biosorbents with nanosorbents is a promising approach for the treatment of water contaminated with heavy metals making this process more efficient, economical, sustainable, and clean.

小球藻偶联锰掺杂磁性铁氧体纳米颗粒去除废水中的重金属离子
在这项研究中,我们研究了小球藻与含锰铁氧体纳米颗粒(NPs)结合对重金属去除和细胞收获的益处。结果表明,无毒纳米颗粒的组合显著提高了sorokiniana的重金属去除能力,而不影响其生长。结合NPs的微藻对Cr6+、Co2+和Ni2+具有较强的吸附能力,并且在相对较短的时间内对这些金属具有较强的吸附能力,表明微藻细胞与纳米材料之间存在协同作用,其中生物吸附和化学吸附是主要的作用机制。发现单金属体系的生物吸附和化学吸附能力最高,当溶液中存在共存离子时,生物吸附和化学吸附能力下降。拟二级吸附模型比拟一级吸附模型能更好地描述吸附过程,表明化学吸附作用大于物理吸附作用。这些特征表明,生物吸附剂与纳米吸附剂的结合是处理重金属污染水的一种很有前途的方法,使处理过程更加高效、经济、可持续和清洁。
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来源期刊
Journal of hazardous materials letters
Journal of hazardous materials letters Pollution, Health, Toxicology and Mutagenesis, Environmental Chemistry, Waste Management and Disposal, Environmental Engineering
CiteScore
10.30
自引率
0.00%
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0
审稿时长
20 days
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