Yang Yuewei, Sun Fengfei, Li Jing, Chen Junfeng, Tang Meizhen
School of Life Science, Qufu Normal University Qufu 273165 China
RSC Adv. 2020 Feb 5;10(10):5988-5995. doi: 10.1039/c9ra09470a. eCollection 2020 Feb 4.
Herein, biochar-supported nanomaterials were synthesized using a mixture of chestnut shells and carbon nanotubes slow pyrolysis at 600 °C for 1 h. Then, the adsorption ability of chestnut shell-carbon nanotubes (CS-CNTs) towards the removal of aqueous Pb(ii) was tested. The removal capacity of Pb(ii) by CS-CNT was 1641 mg g, which was significantly higher than that by the biochar of chestnut shells (CSs) (1568 mg g), which demonstrated that the sorption capacity could be improved by the carbon nanotubes. The factors studied here indicated that the adsorption was rapid in the initial 15 min under the conditions of the Pb(ii) concentration of 50 mg L and the pH value of 5, and the values reached 1417 mg g and 1584 mg g. The adsorption rate and capacity increased on increasing the concentration of NaCl. The sorption reaction was consistent with the Langmuir model, indicating a mono-layer adsorption behavior. The adsorption process can also be defined the pseudo-second-order model, suggesting that the adsorption of Pb(ii) might be controlled by chemisorption. After carrying out four cycles of adsorption-desorption experiments, the adsorption rates of CS and CS-CNT remained at 82.92% and 88.91%, respectively, indicating that the biochar samples had stable and excellent sorption ability for heavy metals and huge application value. Thus, this study would provide a promising sorbent for the treatment and remediation of metal contaminants.
在此,通过将栗壳和碳纳米管的混合物在600℃下缓慢热解1小时来合成生物炭负载的纳米材料。然后,测试了栗壳-碳纳米管(CS-CNTs)对去除水溶液中Pb(II)的吸附能力。CS-CNT对Pb(II)的去除容量为1641mg/g,显著高于栗壳生物炭(CSs)(1568mg/g),这表明碳纳米管可以提高吸附容量。此处研究的因素表明,在Pb(II)浓度为50mg/L、pH值为5的条件下,最初15分钟内吸附迅速,吸附量分别达到1417mg/g和1584mg/g。随着NaCl浓度的增加,吸附速率和容量提高。吸附反应符合Langmuir模型,表明为单层吸附行为。吸附过程也可以用准二级模型来定义,这表明Pb(II)的吸附可能受化学吸附控制。在进行四个循环的吸附-解吸实验后,CS和CS-CNT的吸附率分别保持在82.92%和88.91%,这表明生物炭样品对重金属具有稳定且优异的吸附能力以及巨大的应用价值。因此,本研究将为金属污染物的处理和修复提供一种有前景的吸附剂。