首页> 外文期刊>ACS Omega >Kinetics of Aqueous Cu(II) Biosorption onto Thevetia peruviana Leaf Powder
【24h】

Kinetics of Aqueous Cu(II) Biosorption onto Thevetia peruviana Leaf Powder

机译:铜水溶液(II)的儿童化学矿床

获取原文
           

摘要

Copper is an essential micronutrient; however, as a result of its increasing demand, subsequent mining followed by its direct discharge into the environment has led to the contamination of our ecosystem. Thevetia peruviana (TP) is an ornamental herb of medicinal interest and is extensively used as an antipyretic and anticancer agent due to the presence of cardiac glycosides. In this work, we have explored the TP leaf powder as a biosorbent for Cu(II) removal from aqueous media and observed that it yields better results in comparison to other reported biosorbents for the removal of Cu(II). This work also emphasizes on the biosorption kinetics along with its plausible mechanism of interactions. The leaf powder characterized by FT-IR spectroscopy confirmed the diverse surface functionalities including hydroxyl, carbonyl, glycosides, etc. The morphology and elemental composition of the plant material have been investigated using SEM-EDAX analysis that confirms the heterogeneity and porosity of the biosorbent surface. The encouraging results revealed that the TP leaf powder could be used as a cost-effective biosorbent with an adsorption capacity of 187.51 mg g~(–1) for Cu(II) in aqueous media at pH ~ 5 and a temperature of 303 K. The complex functionality of the TP surface most likely played a significant role in attaining fast equilibrium within 60 min by following pseudo-second-order kinetics, having a rate constant of 2 × 10~(3) mg g~(–1) min~(–1) that has been confirmed with statistical tools such as regression coefficient, chi-squared, and sum of error square tests. The adsorption mechanism is controlled by diffusion of Cu(II) from the liquid phase to the solid phase of the TP biosorbent followed by the chemical interaction between the biosorbent and the adsorbate with slow intraparticle diffusion on the biosorbent surface. The adsorption of Cu(II) on TP has been observed to rise from 59.29 to 197.63 mg g~(–1) with the rise in the pH of the medium from 2 to 7. The adsorption of Cu(II) has been found to increase from 176.80 to 191.33 mg g~(–1) with increasing temperature from 293–308 K, confirming the endothermic nature of the adsorption process. The thermodynamic study revealed the adsorption process to be spontaneous with negative ΔG (?10.43 to ?13.74 kJ mol~(–1)) and that it has an endothermic nature with positive ΔH (54.24 kJ mol~(–1)). The isotherm study for Cu(II) on TP followed the Langmuir adsorption isotherm model with the maximum monolayer adsorption capacity of 303.03 mg g~(–1) rather than Freundlich and Temkin isotherm models, which confirmed the chemical interaction between the sorbent and sorbate. FT-IR and SEM-EDAX analyses have also been used to confirm the adsorption of Cu(II) onto the TP surface. The present study revealed 99.7% Cu(II) desorption using 0.8 N HCl as the desorbent accompanied by a 69.71% regeneration efficiency of the TP biosorbent. After desorption of Cu(II), the regenerated TP could be disposed of in soil. The encouraging results revealed that TP could be used as an alternative and low-cost biosorbent for the removal of heavy metals from aqueous solutions.
机译:铜是必需的微量营养素;然而,由于其需求的日益增长,随后的采矿后来其直接排放到环境中导致了我们生态系统的污染。 Thevetia Peruviana(TP)是一种药用兴趣的观赏药草,由于心脏糖苷的存在,广泛地用作解热和抗癌剂。在这项工作中,我们已经探索了从含水培养基中除去的Cu(II)的生物吸附剂,并且观察到与其他报告的生物吸水剂相比,与其他用于除去Cu(II)的生物吸水性产生更好的结果。这项工作还强调了生物吸附动力学以及其合理的相互作用机制。通过FT-IR光谱表征的叶粉证实了包括羟基,羰基,糖苷等的各种表面官能团。使用SEM-EDAX分析研究了植物材料的形态和元素组成,证实了生物吸附表面的异质性和孔隙率。令人鼓舞的结果表明,TP叶片可用作在pH〜5的水性介质中的Cu(II)的87.51mg g〜(-1)的可容易有效的生物吸附剂。 TP表面的复杂功能最有可能在伪二阶动力学之后在60分钟内获得快速平衡的显着作用,其具有2×10〜(3)mg g〜(-1)min〜 (-1)已通过统计工具(如回归系数,Chi),Chi Squared和错误方形测试的总和确认。吸附机理通过Cu(II)的扩散来控制TP生物吸附剂的固相,然后通过生物吸附剂和吸附物之间的化学相互作用,在生物吸附表面上扩散缓慢。已经观察到Cu(II)对TP的吸附,从59.29至197.63mg g〜(-1)上升,培养基的pH值从2-7的pH值。已发现Cu(II)的吸附从293-308 K的温度升高,从176.80升至191.33mg g〜(1),确认吸附过程的吸热性质。热力学研究揭示了吸附过程,其具有负δ1(α10.43至13.74kJmol〜(-1)),并且具有阳性δ的吸热性质(54.24 kJ mol〜 (-1))。 Cu(II)对TP的等温性研究跟随Langmuir吸附等温模型,最大单层吸附容量为303.03mg g〜(-1),而不是Freundlich和Temkin等温线模型,该模型证实了吸附剂和山梨酸盐之间的化学相互作用。 FT-IR和SEM-EDAX分析也已用于确认Cu(II)的吸附到TP表面上。本研究揭示了使用0.8N HCl作为解吸剂的99.7%Cu(ii)解吸,伴随着TP生物吸附剂的69.71%再生效率。在解吸Cu(II)后,再生TP可以在土壤中处理。令人鼓舞的结果表明,TP可以用作从水溶液中除去重金属的替代和低成本的生物吸附剂。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号