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首页> 外文期刊>Colloids and Surfaces, A. Physicochemical and Engineering Aspects >Modification of calcium-rich biochar by loading Si/Mn binary oxide after NaOH activation and its adsorption mechanisms for removal of Cu(II) from aqueous solution
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Modification of calcium-rich biochar by loading Si/Mn binary oxide after NaOH activation and its adsorption mechanisms for removal of Cu(II) from aqueous solution

机译:通过在NaOH活化后加载Si / Mn二进制氧化物和其吸附机制来改变富含Si / Mn二进制氧化物的吸附机制,从水溶液中除去Cu(II)

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摘要

A novel modified calcium-rich biochar by loading Si/Mn binary oxide after NaOH activation (A-Si/Mn-CRBC) was successfully synthesized at 800 degrees C to enhance the removal of Cu(II) from aqueous solution. The composition and structure of calcium-rich biochars before and after modification were characterized by SEM + EDS, FTIR, XRD and BET. The effect of adsorbent dosage and initial pH on the adsorption behavior of Cu(II) by A-Si/MnCRBC was investigated by batch adsorption experiments. The results showed that activation of NaOH before Si/Mn binary oxide loading greatly influenced properties of the materials. It was beneficial to promote smoother surface morphology and more uniform loading of Si/Mn oxide particles in crystalline state. The removal rate of A-Si/Mn-CRBC for Cu(II) with an initial concentration of 50 mg/L was nearly 100 % under the conditions of dosage of 1 g/L and pH = 3-6, and the acidic of the solution could be neutralized during the adsorption process. Kinetics and isotherms studies demonstrated that Cu(II) adsorption onto A-Si/Mn-CRBC was well described by pseudo-second order model and Langmuir model, indicating that monolayer chemisorption was dominant. Langmuir maximum adsorption capacity of A-Si/Mn-CRBC for Cu(II) was 141.76 mg/g. The Weber-Morris model indicated that intra-particle diffusion was the rate-limiting step for the adsorption of high Cu(II) concentration. Thermodynamic analysis confirmed that the adsorption process was spontaneous and endothermic. Adsorption mechanism was ascribed to surface complexation, precipitation, ion exchange and pore-filling. Above all, A-Si/Mn-CRBC is a promising adsorbent for the treatment of acidic heavy metals wastewater.
机译:通过在800℃下成功地合成NaOH激活(A-Si / Mn-CRBC)后加载Si / Mn二进制氧化物的新型改性钙的生物炭,以增强从水溶液中除去Cu(II)的除去。通过SEM + EDS,FTIR,XRD和BET表征富含修饰之前和之后的富含钙的Biochar的组成和结构。通过分批吸附实验研究了吸附剂剂量和初始pH对Cu / MnCRBC的Cu(II)的吸附行为的影响。结果表明,在Si / Mn二元氧化物之前的NaOH活化载荷大大影响了材料的性质。促进更平滑的表面形态和更均匀地负载Si / Mn氧化物颗粒在结晶状态是有益的。在剂量为1g / L和pH = 3-6的剂量下,初始浓度为50mg / L的Cu / Mn-CRBc的去除率为50mg / L的初始浓度接近100%,以及酸性可以在吸附过程中溶液中和。动力学和等温机构研究证明,Cu(II)对A-Si / Mn-CRBC的吸附是通过伪二次阶模型和Langmuir模型描述的,表明单层化学吸附是显性的。用于Cu(II)的A-Si / MN-CRBC的Langmuir最大吸附容量为141.76mg / g。 Weber-Morris模型表明,颗粒内扩散是吸附高Cu(II)浓度的速率限制步骤。热力学分析证实吸附过程是自发性和吸热的。吸附机制归因于表面络合,沉淀,离子交换和孔隙填充物。最重要的是,A-Si / MN-CRBC是治疗酸性重金属废水的有希望的吸附剂。

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