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Potential Use of Biochar from Various Waste Biomass as Biosorbent in Co(II) Removal Processes

机译:潜在使用生物炭来自各种废物生物量作为CO(II)去除过程中的生物吸附剂

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摘要

The removal of Co(II) ions from aqueous media was done using three types of biochars obtained from algae waste biomass, mustard waste biomass, and soy waste biomass. The biochar samples were obtained by pyrolysis of waste biomass resulted from biofules production, at relative low temperature (600−650 °C), and this procedure can be considered a suitable alternative to reduce the volume of such waste. FTIR spectra recorded for each type of biochar reveal the presence of several functional groups that can be used as binding sites for Co(II) retention. The batch biosorption experiments were performed as a function of initial Co(II) ions concentration and contact time, at constant solution pH (5.0), sorbent dose (8.0 g/L), and room temperature (25 ± 1 °C). The sorption experiments showed that the Co(II) ions retention reaches the equilibrium in maximum 60 min, and the maximum sorption capacity follows the order: Mustard biochar (MBC—24.21 mg/g) < soy biochar (SBC—19.61 mg/g) < algae biochar (ABC—11.90 mg/g). The modeling of experimental data proves that the retention of Co(II) ions from aqueous solution occurs through electrostatic interactions, and that the sorption process takes place until a monolayer coverage is formed on the outer surface of the biochar. This information is very useful in the design of a suitable desorption system. The desorption results showed that by treating the biochar samples loaded with Co(II) ions with 0.1 mol/L HNO3 solution, over 92% of Co(II) ions are desorbed and can be recovered, and the biochar samples can be used in at least three sorption/desorption cycles. All the experimental observations sustain the potential use of biochar obtained from different types of waste biomass as a promising alternative sorbent for the removal of Co(II) ions from aqueous media.
机译:从水性介质中的Co(II)离子的去除使用三种类型的生物炭的从藻类废弃生物质获得,芥末废生物质完成,并且大豆废生物质。生物炭样品通过废弃生物质的热解获得的,导致从biofules生产,在相对低温下(600-650℃),并且该过程可以被认为是合适的替代,以减少这类废物的体积。 FTIR光谱记录每个类型的生物炭揭示可以用作结合位点的Co(II)保留几个官能团的存在。将批料吸附实验作为初始钴的函数来执行(II)离子的浓度和接触时间,在恒定的溶液的pH值(5.0),吸附剂剂量(8.0克/升),并室温(25±1℃)。表明吸附实验,所述的Co(II)离子保留达到最大60分钟的平衡,最大吸附能力如下的顺序:芥生物炭(MBC-24.21毫克/克)<大豆生物炭(SBC-19.61毫克/克) <藻类生物炭(ABC-11.90毫克/克)。实验数据的建模证明从水溶液的Co(II)离子的保留通过静电相互作用发生,并且直到所述生物炭的外表面上形成的单分子层覆盖在吸附过程发生。该信息在适当的解吸系统的设计非常有用的。解吸结果表明,通过处理负载有钴的生物炭样品(II)离子与0.1mol / L的HNO 3溶液,钴的92%以上(II)离子解吸,可以回收,并且生物炭样品可以在使用至少三个吸附/解吸循环。所有的实验观察维持的潜在用途的生物炭从不同类型的废物的生物质作为用于除去CO(II)从水性介质中的离子的有前途的替代吸附剂获得。

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