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Study of the modification mechanism of heavy metal ions adsorbed by biomass-activated carbon doped with a solid nitrogen source

机译:用固体氮源掺杂生物质活性炭掺杂的重金属离子的改性机理研究

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In this study, the N-doping of biomass-activated carbon with dicyandiamide was performed via an ultrasonic method and a redox method. BET, SEM, EDS, FT-IR and XPS were used to determine the pore structures, morphologies and surface chemistry of the adsorbents obtained. The N-doping effect of the two modification methods on the same solid nitrogen source was evaluated and the simulated adsorption experiments of heavy metal ions in wastewater were conducted. The results showed that the N-doped biomass-activated carbon having the higher doping content was obtained by a redox method with nitric acid at 25 degrees C, a solid nitrogen source ratio of 1 : 1 and charring at 800 degrees C for 2 hours. The adsorption efficiency for the divalent copper ion of the sample obtained by the redox method was 41.15% higher than that of the ultrasonic method sample, and proved that pyridinium nitrogens and amino groups play important roles in adsorption and complexation processes. The isothermal adsorption experiments of N-doped activated carbon conformed to the Freundlich model, which mainly depended on chemical adsorption. The kinetics for copper ion adsorption followed a pseudo-second-order kinetic model. Thermodynamic experiments showed that a higher temperature was advantageous to adsorption. Simultaneously, this study further analyzed the N-doping process of the redox method sample and suggested that improvements can be implemented in the N-doping of activated carbon with solid nitrogen sources.
机译:在该研究中,通过超声波方法和氧化还原方法进行与双氰胺的生物质活性炭的N掺杂。 BET,SEM,EDS,FT-IR和XPS用于确定所获得的吸附剂的孔结构,形态和表面化学。评价了两种改性方法的N-掺杂效果,并进行了废水中重金属离子的模拟吸附试验。结果表明,通过在25℃下用硝酸的氧化还原方法获得具有较高掺杂含量的N掺杂的生物质活性炭,固体氮源比为1:1,在800℃下搅拌2小时。通过氧化还原方法获得的样品的二价铜离子的吸附效率高于超声波方法样品的41.15%,并证明了吡啶硝基和氨基在吸附和络合过程中起重要作用。 N掺杂活性炭的等温吸附试验符合Freundlich模型,主要取决于化学吸附。铜离子吸附的动力学跟随伪二阶动力学模型。热力学实验表明,较高的温度有利于吸附。同时,该研究进一步分析了氧化还原方法样品的N-掺杂方法,并表明可以在具有固体氮源的活性炭的N掺杂中实施改进。

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    《RSC Advances》 |2019年第64期|共10页
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  • 正文语种 eng
  • 中图分类 化学;
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