State Key Laboratory of Pollution Control and Resource Reuse, School of the Environment, Nanjing University, Nanjing 210023, China.
State Key Laboratory of Pollution Control and Resource Reuse, School of the Environment, Nanjing University, Nanjing 210023, China; Research Center for Environmental Nanotechnology (ReCENT), Nanjing University, Nanjing 210023, China.
Water Res. 2018 Jun 15;137:37-46. doi: 10.1016/j.watres.2018.03.006. Epub 2018 Mar 5.
In this study we reported that the presence of functionalized multi-walled carbon nanotubes (FCNT-H) would greatly enhance the degradation of atrazine (ATZ), a model contaminant, in the Fe(III)-mediated Fenton-like system. Efficient ATZ degradation (>90%) was achieved within 30 min in the presence of 20 mg.L FCNT-H, 2.0 mg.L Fe(III), and 170 mg.L HO, whereas negligible ATZ degradation occurred in FCNT-H free system. The structure and surface chemistry of FCNT-H and other CNTs were well characterized. The formed active species were determined based on ESR analysis, and the mass balance of Fe species during the reaction was monitored. In particular, a new method based on ferrozine complexation was proposed to track the formed Fe(II). The results indicated that ATZ was mainly degraded by the generated hydroxyl radical (HO·), and Fe(III)/Fe(II) cycling was still the rate-limiting step. Besides a small fraction of Fe(III) reduced by FCNT-H, a new pathway was revealed for fast reduction of most Fe(III), i.e., reaction of FCNT-H-Fe(III) complexes with HO. Comparison of different CNTs-mediated Fe(III)/HO systems indicated that such enhanced effect of CNTs mainly resulted from the surface carboxyl group instead of hydroxyl and carbonyl group. Combined with X-ray photoelectron spectroscopy (XPS) analysis, the electron density migration from Fe(III) to FCNT-H possibly resulted in the fast reduction of FCNT-H-Fe(III) complexes by HO. This study enables better understanding the enhanced Fe(III)-mediated Fenton-like reaction in the presence of MWCNTs and thus, will shed new light on how to develop more efficient similar Fenton systems via Fe(III) complexation.
在这项研究中,我们报告称,功能化多壁碳纳米管(FCNT-H)的存在将极大地增强三价铁(Fe(III))介导的类芬顿体系中莠去津(ATZ)的降解。在存在 20mg·L FCNT-H、2.0mg·L Fe(III)和 170mg·L HO 的情况下,30min 内可实现高效的 ATZ 降解(>90%),而在无 FCNT-H 的体系中,ATZ 几乎没有降解。对 FCNT-H 和其他 CNTs 的结构和表面化学性质进行了很好的表征。基于 ESR 分析确定了形成的活性物质,并监测了反应过程中 Fe 物种的质量平衡。特别是,提出了一种基于铁嗪络合的新方法来跟踪形成的 Fe(II)。结果表明,ATZ 主要通过生成的羟基自由基(HO·)降解,Fe(III)/Fe(II)循环仍然是限速步骤。除了一小部分 FCNT-H 还原的 Fe(III)外,还揭示了一种快速还原大多数 Fe(III)的新途径,即 FCNT-H-Fe(III)配合物与 HO 的反应。比较不同 CNTs 介导的 Fe(III)/HO 体系表明,CNTs 的这种增强效应主要源于表面羧基,而不是羟基和羰基。结合 X 射线光电子能谱(XPS)分析,电子密度从 Fe(III)迁移到 FCNT-H 可能导致 FCNT-H-Fe(III)配合物被 HO 快速还原。本研究使人们更好地理解了 MWCNTs 存在下增强的 Fe(III)介导的类芬顿反应,从而为如何通过 Fe(III)络合开发更有效的类似芬顿体系提供了新的思路。