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关于碳纳米管上过二硫酸盐活化的电子转移机制的研究:氧官能团的作用。

Insights into the Electron-Transfer Regime of Peroxydisulfate Activation on Carbon Nanotubes: The Role of Oxygen Functional Groups.

机构信息

Department of Environmental Science and Engineering , Wuhan University , Wuhan 430079 , China.

School of Chemical Engineering and Advanced Materials , The University of Adelaide , Adelaide SA5005 , Australia.

出版信息

Environ Sci Technol. 2020 Jan 21;54(2):1267-1275. doi: 10.1021/acs.est.9b06208. Epub 2019 Dec 30.

Abstract

Carbon-driven advanced oxidation processes are appealing in wastewater purification because of the metal-free feature of the carbocatalysts. However, the regime of the emerging nonradical pathway is ambiguous because of the intricate carbon structure. To this end, this study was dedicated to unveil the intrinsic structure-performance relationship of peroxydisulfate (PDS) activation by carbon nanotubes (CNTs) toward nonradical oxidation of organics such as phenol (PE) via electron transfer. Eighteen analogical CNTs were synthesized and functionalized with different categories and contents of oxygen species. The quenching tests and chronopotentiometry suggest that an improved reactivity of surface-regulated CNTs was attributed to the reinforced electron-transfer regime without generation of free radicals and singlet oxygen. The quantitative structure-activity relationships were established and correlated to the Tafel equation, which unveils the nature of the nonradical oxidation by CNT-activated PDS complexes (CNT-PDS*). First, a decline in the concentration of oxygen groups in CNTs will make the zeta potential of the CNT become less negative in neutral solutions, which facilitated the adsorption of PDS because of weaker electrostatic repulsion. Then, the metastable CNT-PDS* was formed, which elevated the oxidation capacity of the CNT. Finally, PE would be oxidized over CNT-PDS* via electron transfer to fulfill the redox cycle. Moreover, the nonradical oxidation rate was uncovered to be exponentially related with the potential of the complexes, suggesting that the nonradical oxidation by the CNT-PDS* undergoes a mechanism analogous to anodic oxidation.

摘要

碳驱动的高级氧化工艺在废水净化中很有吸引力,因为碳催化剂没有金属。然而,由于碳结构的复杂性,新兴的非自由基途径的机制还不清楚。为此,本研究致力于揭示通过电子转移将过二硫酸盐(PDS)活化为碳纳米管(CNT)的内在结构-性能关系,以实现对有机物如苯酚(PE)的非自由基氧化。合成了 18 种类似的 CNT,并对其进行了不同类别和含量的含氧物种的功能化。猝灭试验和计时电位法表明,表面调控 CNT 的增强反应性归因于强化的电子转移机制,而没有自由基和单线态氧的生成。建立了定量结构-活性关系,并与塔菲尔方程相关联,揭示了 CNT 激活过二硫酸盐复合物(CNT-PDS*)的非自由基氧化的性质。首先,CNT 中含氧基团的浓度下降会使 CNT 在中性溶液中的zeta 电位变得不那么负,从而由于较弱的静电排斥作用,有利于 PDS 的吸附。然后,形成了亚稳态的 CNT-PDS*,提高了 CNT 的氧化能力。最后,PE 将在 CNT-PDS上通过电子转移被氧化,以完成氧化还原循环。此外,非自由基氧化速率被发现与配合物的电位呈指数相关,表明 CNT-PDS的非自由基氧化经历了类似于阳极氧化的机制。

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