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Synthesis of Fe-impregnated biochar from food waste for Selenium(Ⅵ) removal from aqueous solution through adsorption: Process optimization and assessment

机译:通过吸附从水溶液中从水溶液中除去Fe浸渍生物炭的合成:工艺优化和评估

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摘要

Iron-impregnated food waste biochar (Fe-FWB) was synthesized for Se(VI) removal from aqueous solution. The effect and interactive effects of different parameters including pyrolysis time, temperature, and Fe concentration were explored using response surface methodology (RSM) to enhance conditions to achieve the highest Se(VI) removal using Fe-FWB. Pyrolysis time was not significant for Se(VI) adsorption capacity of Fe-FWB, but temperature and Fe concentration were found to be significant. The highest adsorption was achieved at 3.47 h and 495.0 degrees C with an Fe concentration of 0.44 M. Fe-FWB synthesized under optimum conditions were used to investigate the kinetic, equilibrium, and thermodynamic adsorption of Se(VI). Se(VI) adsorption reached equilibrium within 6 h, and both pseudo-second order and pseudo-first order models were suitable for describing kinetic Se(VI) adsorption. The Freundlich model was found to suitably fit the equilibrium adsorption data than the Langmuir model. The highest adsorption capacity of Fe-FWB for Se(VI) was 11.7 mg g(-1). Se(VI) adsorption on Fe-FWB was endothermic and spontaneous. The enthalpy change for Se(VI) adsorption was 54.4 kJ mol(-1), and the entropy change was negative at 15-35 degrees C. The increment of solution pH from 3 to 11 decreased the Se(VI) adsorption from 19.2 to 7.4 mg g(-1). The impact of interfering anions on Se(VI) adsorption followed the lineup: HCO3- HPO42- SO42- NO3-. When compared to some adsorbents, the adsorption capacity of Se(VI) onto Fe-FWB was comparable even at neutral pH and the Fe-FWB was granular. These results indicate that Fe-FWB has prospective application in the removal of Se(VI) from aqueous solutions. (C) 2020 Elsevier Ltd. All rights reserved.
机译:将铁浸渍的食品废物生物炭(Fe-FWB)合成用于从水溶液中除去Se(VI)。使用响应表面方法(RSM)探索不同参数的效果和交互式,包括热解时间,温度和Fe浓度,以增强使用Fe-FWB实现最高SE(VI)的条件。热解时间对于Fe-FWB的SE(VI)吸附能力不显着,但发现温度和Fe浓度是显着的。在3.47小时和495.0℃下实现最高吸附,在最佳条件下合成的Fe-FWB为0.44米,用于研究SE(VI)的动力学,平衡和热力学吸附。 Se(VI)吸附在6小时内达到平衡,伪二阶和伪第一阶模型都适用于描述动力学SE(VI)吸附。发现Freundlich模型适合比Langmuir模型适合平衡吸附数据。 Fe-FWB的最高吸附能力为SE(VI)为11.7mg g(-1)。 SE(VI)对Fe-FWB的吸附是吸热和自发的。 SE(VI)吸附的焓变化为54.4 kJ摩尔(-1),熵变为15-35℃。溶液pH从3-11的溶液升高降低19.2至7.4 mg g(-1)。干扰阴离子对SE(VI)吸附的影响序列:HCO3-> HPO42-> SO42-> NO3-。与一些吸附剂相比,即使在中性pH下,SE(VI)在Fe-FWB上的吸附容量也可相当,FE-FWB是颗粒状的。这些结果表明Fe-FWB在从水溶液中除去SE(VI)的前瞻性应用。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Chemosphere》 |2020年第8期|126475.1-126475.11|共11页
  • 作者单位

    Hankyong Natl Univ Dept Integrated Syst Engn Anseong 17579 South Korea;

    Hankyong Natl Univ Dept Chem Engn Anseong 17579 South Korea;

    Seoul Natl Univ Environm Funct Mat & Water Treatment Lab Seoul South Korea;

    Hankyong Natl Univ Dept Bioresources & Rural Syst Engn Anseong 17579 South Korea;

    Ajou Univ Dept Environm & Safety Engn Suwon 16499 South Korea;

    Pusan Natl Univ Dept Environm Engn Busan 46241 South Korea;

    Hankyong Natl Univ Dept Bioresources & Rural Syst Engn Anseong 17579 South Korea;

    Hankyong Natl Univ Dept Bioresources & Rural Syst Engn Anseong 17579 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

    Food waste; Biochar; Iron; Impregnation; Temperature; Selenium;

    机译:食物垃圾;生物炭;铁;浸渍;温度;硒;

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