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High-Efficiency Removal of Cr(VI) from Wastewater by Mg-Loaded Biochars: Adsorption Process and Removal Mechanism

机译:含镁生物炭高效去除废水中的Cr(VI):吸附过程与去除机理

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摘要

Biochars were produced with magnesium chloride as an additive for the sorption of hexavalent chromium dissolved in water using five types of straw (from taro, corn, cassava, Chinese fir, and banana) and one type of shell ( ) as the raw materials. The removal of hexavalent chromium by the six biochars mainly occurred within 60 min and then gradually stabilized. The kinetics of the adsorption process were second order, the Langmuir model was followed, and the adsorption of Cr(VI) by the six biochars was characterized by Langmuir monolayer chemisorption on a heterogeneous surface. Banana straw biochar (BSB) had the best performance, which perhaps benefitted from its special structure and best adsorption effect on Cr(VI), and the theoretical adsorption capacity was calculated as 125.00 mg/g. For the mechanism analysis, Mg-loaded biochars were characterized before and after adsorption by Fourier transform infrared spectroscopy (FTIR), X-ray diffractometry (XRD), and scanning electron microscopy/energy dispersive spectroscopy (SEM-EDS). The adsorption mechanism differed from the adsorption process of conventional magnetic biochar, and biochar interactions with Cr(VI) were controlled mainly by electrostatic attraction, complexation, and functional group bonding. In summary, the six Mg-loaded biochars exhibit great potential advantages in removing Cr(VI) from wastewater and have promising potential for practical use, especially BSB, which shows super-high adsorption performance.
机译:使用五种类型的稻草(来自芋头,玉米,木薯,杉木和香蕉)和一种类型的壳()作为原料,以氯化镁为添加剂生产生物炭,以吸附溶解在水中的六价铬。六种生物炭对六价铬的去除主要发生在60分钟内,然后逐渐稳定下来。吸附过程的动力学是二阶的,遵循Langmuir模型,通过在异质表面上的Langmuir单层化学吸附来表征六种生物炭对Cr(VI)的吸附。香蕉秸秆生物炭性能最好,这可能得益于其特殊的结构和对Cr(VI)的最佳吸附效果,其理论吸附容量为125.00 mg / g。为了进行机理分析,通过傅立叶变换红外光谱法(FTIR),X射线衍射法(XRD)和扫描电子显微镜/能量色散光谱法(SEM-EDS)对吸附前和吸附后镁的生物炭进行了表征。吸附机理不同于常规磁性生物炭的吸附过程,生物炭与Cr(VI)的相互作用主要受静电吸引,络合和官能团键合控制。总之,六种负载镁的生物炭在去除废水中的Cr(VI)方面显示出巨大的潜在优势,并且在实际应用中具有广阔的发展潜力,尤其是BSB,它具有超高的吸附性能。

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