Abstract Heavy metal removal from aqueous solutions using engineered magnetic biochars derived from waste marine macro-algal biomass
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Heavy metal removal from aqueous solutions using engineered magnetic biochars derived from waste marine macro-algal biomass

机译:使用源自海洋废大型藻类生物质的工程磁性生物炭从水溶液中去除重金属

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AbstractDespite the excellent sorption ability of biochar for heavy metals, it is difficult to separate and reuse after adsorption when applied to wastewater treatment process. To overcome these drawbacks, we developed an engineered magnetic biochar by pyrolyzing waste marine macro-algae as a feedstock, and we doped iron oxide particles (e.g., magnetite, maghemite) to impart magnetism. The physicochemical characteristics and adsorption properties of the biochar were evaluated. When compared to conventional pinewood sawdust biochar, the waste marine algae-based magnetic biochar exhibited a greater potential to remove heavy metals despite having a lower surface area (0.97m2/g for kelp magnetic biochar and 63.33m2/g for hijikia magnetic biochar). Although magnetic biochar could be effectively separated from the solution, however, the magnetization of the biochar partially reduced its heavy metal adsorption efficiency due to the biochar's surface pores becoming plugged with iron oxide particles. Therefore, it is vital to determine the optimum amount of iron doping that maximizes the biochar's separation without sacrificing its heavy metal adsorption efficiency. The optimum concentration of the iron loading solution for the magnetic biochar was determined to be 0.025–0.05mol/L. The magnetic biochar's heavy metal adsorption capability is considerably higher than that of other types of biochar reported previously. Further, it demonstrated a high selectivity for copper, showing two-fold greater removal (69.37mg/g for kelp magnetic biochar and 63.52mg/g for hijikia magnetic biochar) than zinc and cadmium. This high heavy metal removal performance can likely be attributed to the abundant presence of various oxygen-containing functional groups (COOH and OH) on the magnetic biochar, which serve as potential adsorption sites for heavy metals. The unique features of its high heavy metal removal performance and easy separation suggest that the magnetic algae biochar can potentially be applied in diverse areas that require biosorbents for pollutant removal.Graphical abstractDisplay OmittedHighlightsMagnetic biochar derived from marine macro-algae was made for heavy metal adsorption.Physicochemical properties and isotherms were characterized using various techniques.Iron-loaded condition was optimized for Cd, Cu, and Zn removal and magnetic separation simultaneously.Magnetic macro-algae biochar had high selectivity for Cu with plentiful O-containing groups.Adsorption and recovery ability showed an opposite tendency as iron doping increased.
机译: 摘要 尽管生物炭对重金属具有出色的吸附能力,但将其应用于废水处理工艺后,很难分离和再利用。为了克服这些缺点,我们通过热解废海洋大型藻类作为原料开发了一种工程磁性生物炭,并掺杂了氧化铁颗粒(例如磁铁矿,磁铁矿)以赋予磁性。评价了生物炭的理化特性和吸附性能。与传统的松木锯末生物炭相比,废海藻基磁性生物炭具有较低的表面积(0.97m 2 ),具有更大的去除重金属的潜力。 / g(用于海带磁性生物炭)和63.33m 2 / g(用于hijikia磁性生物炭)。尽管可以从溶液中有效分离磁性生物炭,但是由于生物炭的表面孔被氧化铁颗粒堵塞,生物炭的磁化部分降低了其对重金属的吸附效率。因此,至关重要的是确定最佳的铁掺杂量,以最大化生物炭的分离而不牺牲其重金属吸附效率。确定磁性生物炭的铁负载溶液的最佳浓度为0.025–0.05mol / L。磁性生物炭对重金属的吸附能力明显高于以前报道的其他类型的生物炭。此外,它显示出对铜的高选择性,显示出比锌和镉高两倍的去除率(海藻磁性生物炭为69.37mg / g,hijikia磁性生物炭为63.52mg / g)。如此高的重金属去除性能可能归因于磁性生物炭上大量存在的各种含氧官能团(COOH和OH),这些官能团可作为重金属的潜在吸附位。其高重金属去除性能和易于分离的独特特征表明,磁性藻类生物炭可潜在地应用于需要生物吸附剂去除污染物的各个领域。 < / ce:abstract> 图形摘要 省略显示 突出显示 < ce:simple-para id =“ sp0075” view =“ all”> 衍生自海洋大型藻类的磁性生物炭用于重金属吸附。 < ce:label>• 使用多种技术对理化性质和等温线进行了表征。 已针对Cd,Cu, 磁性大型藻类生物炭对含大量O的铜具有很高的选择性。 随着铁掺杂的增加,吸附和恢复能力呈现出相反的趋势。

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