Utilizing the oxygen-atom trapping effect of Co3O4 with oxygen vacancies to promote chlorite activation for water decontamination.

IF 9.5 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Ruidian Su, Yixuan Gao, Long Chen, Yi Chen, Nan Li, Wen Liu, Baoyu Gao, Qian Li
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引用次数: 0

Abstract

Heterogeneous high-valent cobalt-oxo [≡Co(IV)=O] is a widely focused reactive species in oxidant activation; however, the relationship between the catalyst interfacial defects and ≡Co(IV)=O formation remains poorly understood. Herein, photoexcited oxygen vacancies (OVs) were introduced into Co3O4 (OV-Co3O4) by a UV-induced modification method to facilitate chlorite (ClO2-) activation. Density functional theory calculations indicate that OVs result in low-coordinated Co atom, which can directionally anchor chlorite under the oxygen-atom trapping effect. Chlorite first undergoes homolytic O-Cl cleavage and transfers the dissociated O atom to the low-coordinated Co atom to form reactive ≡Co(IV)=O with a higher spin state. The reactive ≡Co(IV)=O rapidly extracts one electron from ClO2- to form chlorine dioxide (ClO2), accompanied by the Co atom returning a lower spin state. As a result of the oxygen-atom trapping effect, the OV-Co3O4/chlorite system achieved a 3.5 times higher efficiency of sulfamethoxazole degradation (~0.1331 min-1) than the pristine Co3O4/chlorite system. Besides, the refiled OVs can be easily restored by re-exposure to UV light, indicating the sustainability of the oxygen atom trap. The OV-Co3O4 was further fabricated on a polyacrylonitrile membrane for back-end water purification, achieving continuous flow degradation of pollutants with low cobalt leakage. This work presents an enhancement strategy for constructing OV as an oxygen-atom trapping site in heterogeneous advanced oxidation processes and provides insight into modulating the formation of ≡Co(IV)=O via defect engineering.

利用带有氧空位的 Co3O4 的氧原子捕获效应促进亚氯酸盐活化以净化水。
异质高价钴氧[≡Co(IV)=O]是氧化剂活化过程中广泛关注的活性物种;然而,人们对催化剂界面缺陷与≡Co(IV)=O形成之间的关系仍然知之甚少。本文通过紫外光诱导改性方法将光激发氧空位(OV)引入 Co3O4(OV-Co3O4),以促进亚氯酸盐(ClO2-)的活化。密度泛函理论计算表明,OV 导致低配位 Co 原子,在氧原子捕获效应的作用下可定向锚定绿泥石。绿泥石首先发生同解 O-Cl 裂解,并将离解的 O 原子转移到低配位 Co 原子上,形成具有较高自旋态的活性≡Co(IV)=O。活性≡Co(IV)=O 迅速从 ClO2- 中提取一个电子,形成二氧化氯(ClO2),同时 Co 原子返回较低的自旋状态。由于氧原子捕获效应,OV-Co3O4/亚氯酸盐体系的磺胺甲噁唑降解效率(约 0.1331 min-1)是原始 Co3O4/亚氯酸盐体系的 3.5 倍。此外,重新处理后的 OV 在紫外光的照射下很容易恢复,这表明氧原子捕获器具有可持续性。OV-Co3O4 被进一步制作在聚丙烯腈膜上,用于后端水净化,在低钴泄漏的情况下实现了污染物的连续流降解。这项工作提出了一种在异质高级氧化过程中构建 OV 作为氧原子捕获位点的增强策略,并为通过缺陷工程调控≡Co(IV)=O 的形成提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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