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.
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。
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.