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MnO_2-decorated biochar composites of coconut shell and rice husk: An efficient lithium ions adsorption-desorption performance in aqueous media

机译:椰壳和稻壳的MNO_2装饰生物炭复合材料:水性介质中有效的锂离子吸附 - 解吸性能

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摘要

Lithium (Li+) is used in various applications involving pharmaceuticals, textile dyes, and batteries. Therefore, the demand for environmentally friendly and effective materials for Li+ uptake and recovery continues to increase. Herein, rice husk (RH) and coconut shell (CS) biomasses were used to fabricate honeycomb-networked biochar (BC) precursors via slow pyrolysis. RHBC- and CSBC-based MnO2 composites were synthesized by depositing MnO2 in various ratios onto RHBC and CSBC by varying the KMnO4 concentration (2%, 3%, and 4%), followed by simple ultrasonication and heat-treatment methodologies. The structural and physicochemical properties of all of the fabricated composites were analyzed using several different instrumental methods. The batch adsorption experiments were performed for comparative Li+-adsorption studies of RHBC-Mnx and CSBC-Mnx composites by optimizing several parameters (pH, adsorbent dose, Li+ initial concentration, and contact time). The comparative adsorption analysis revealed that the RHBC-Mnx composites exhibited stronger Li+-adsorption ability than the CSBC-Mnx composites and that increasing the MnO2 deposition to 3% in both cases led to maximum Li+ adsorption capacities (62.85 mg g(-1) and 57.8 mg g(-1)), respectively. The kinetic studies show that Li+ adsorption proceeds through the pseudo-second-order mechanism. Li+ recovery was successfully carried out using HCl (eluting agent), thereby demonstrating the benefits of synthesized composites at the industrial scale. The current work indicates that the fabricated RHBC-Mnx and CSBC-Mnx composites may have potential for use as economical composites in eco-friendly applications such as Li+ adsorption and recovery from aqueous media. (C) 2020 Elsevier Ltd. All rights reserved.
机译:锂(Li +)用于涉及药物,纺织染料和电池的各种应用中。因此,对Li +摄取和恢复对环保和有效材料的需求继续增加。这里,使用稻壳(RH)和椰子壳(CS)生物质通过慢热解制作蜂窝网络生物炭(BC)前体。通过改变KMNO 4浓度(2%,3%和4%),通过各种比率沉积MnO 2来合成RHBC-和CSBC的MNO2复合材料,然后通过改变简单的超声波和热处理方法,通过将MnO 2沉积在RHBC和CSBC上。使用几种不同的仪器方法分析所有制造复合材料的结构和物理化学性质。通过优化几个参数(pH,吸附剂剂量,Li +初始浓度和接触时间,对RHBC-MNX和CSBC-MNX复合材料进行比较Li +吸附研究进行批量吸附实验。对比吸附分析显示RHBC-MNX复合材料表现出比CSBC-MNX复合材料更强的Li +吸收能力,并且在两种情况下将MnO 2沉积增加到3%的3%导致最大Li +吸附容量(62.85mg(-1)和分别为57.8 mg(-1))。动力学研究表明,Li +吸附通过伪二阶机制进行。使用HCl(洗脱剂)成功地进行了Li +恢复,从而证明了在工业规模处的合成复合材料的益处。目前的工作表明,制造的RHBC-MNX和CSBC-MNX复合材料可能具有用作生态友好型应用中的经济复合材料,例如Li +吸附和从含水介质中恢复。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Chemosphere》 |2020年第12期|127500.1-127500.15|共15页
  • 作者

    Kamran Urooj; Park Soo-Jin;

  • 作者单位

    Inha Univ Dept Chem 100 Inharo Incheon 22212 South Korea;

    Inha Univ Dept Chem 100 Inharo Incheon 22212 South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biochar; Composites; Manganese dioxide; Lithium adsorption; Recovery;

    机译:生物炭;复合材料;二氧化锰;锂吸附;恢复;

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