通过有序碳增强 CoFe 量子点上新出现的污染物激发氧活化的电子捐赠效应实现水自净

IF 14 1区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Environmental Science and Ecotechnology Pub Date : 2023-12-05 DOI:10.1016/j.ese.2023.100356
Yuhao Shi , Dongxuan Yang , Chun Hu, Lai Lyu
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引用次数: 0

摘要

新出现的污染物(ECs)释放到水生环境中对全球水安全构成了重大风险。高级氧化工艺(AOPs)虽然能有效去除 ECs,但往往是资源和能源密集型的。在此,我们介绍一种新型催化剂--嵌入石墨烯纳米线的 CoFe 量子点(CoFeQds@GN-Nws),它是通过厌氧聚合法合成的。它的表面具有独特的富电子和贫电子微区,可实现废水自净机制。这是通过利用废水的内能,特别是污染物和溶解氧(DO)的结合能来实现的。在常温常压条件下,该催化剂无需外加氧化剂即可高效去除 EC,去除率接近 100.0%。催化剂的结构-活性关系表明,CoFe 量子点促进了不平衡的电子分布,形成了这些微区。这就产生了持续的电子捐献效应,从而有效地裂解或氧化污染物。同时,溶解氧被活化成超氧化物阴离子(O2--),协同帮助清除污染物。这种方法减少了通常与 AOP 相关的资源和能源需求,标志着废水处理技术的可持续发展。
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Water self-purification via electron donation effect of emerging contaminants arousing oxygen activation over ordered carbon-enhanced CoFe quantum dots

The release of emerging contaminants (ECs) into aquatic environments poses a significant risk to global water security. Advanced oxidation processes (AOPs), while effective in removing ECs, are often resource and energy-intensive. Here, we introduce a novel catalyst, CoFe quantum dots embedded in graphene nanowires (CoFeQds@GN-Nws), synthesized through anaerobic polymerization. It uniquely features electron-rich and electron-poor micro-regions on its surface, enabling a self-purification mechanism in wastewater. This is achieved by harnessing the internal energy of wastewater, particularly the bonding energy of pollutants and dissolved oxygen (DO). It demonstrates exceptional efficiency in removing ECs at ambient temperature and pressure without the need for external oxidants, achieving a removal rate of nearly 100.0%. The catalyst's structure-activity relationship reveals that CoFe quantum dots facilitate an unbalanced electron distribution, forming these micro-regions. This leads to a continuous electron-donation effect, where pollutants are effectively cleaved or oxidized. Concurrently, DO is activated into superoxide anions (O2•−), synergistically aiding in pollutant removal. This approach reduces resource and energy demands typically associated with AOPs, marking a sustainable advancement in wastewater treatment technologies.

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来源期刊
CiteScore
20.40
自引率
6.30%
发文量
11
审稿时长
18 days
期刊介绍: Environmental Science & Ecotechnology (ESE) is an international, open-access journal publishing original research in environmental science, engineering, ecotechnology, and related fields. Authors publishing in ESE can immediately, permanently, and freely share their work. They have license options and retain copyright. Published by Elsevier, ESE is co-organized by the Chinese Society for Environmental Sciences, Harbin Institute of Technology, and the Chinese Research Academy of Environmental Sciences, under the supervision of the China Association for Science and Technology.
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