Dr. Shuo Wang, Dr. Mengting Liu, Dr. Yarao Gao, Dr. Hongyao Zhao, Dr. Hongyang Zhu, Dr. Rongrong Du, Dr. Yuyang Zheng, Dr. Zengjing Guo, Dr. Yanyun Wang, Dr. Yiyan Song, Prof. Fu Yang
{"title":"集成污染物矿化和太阳能水蒸发的钴铜双金属致密中空碳化硅混合光热纳米反应器","authors":"Dr. Shuo Wang, Dr. Mengting Liu, Dr. Yarao Gao, Dr. Hongyao Zhao, Dr. Hongyang Zhu, Dr. Rongrong Du, Dr. Yuyang Zheng, Dr. Zengjing Guo, Dr. Yanyun Wang, Dr. Yiyan Song, Prof. Fu Yang","doi":"10.1002/cssc.202400406","DOIUrl":null,"url":null,"abstract":"<p>Growing attention has been paid to the rational treatment of antibiotics-bearing medical wastewater. However, the complexity of polluted wastewater makes the later comprehensive treatment difficult only by the Advanced Oxidation Process technique. Therefore, the coupled water treatment techniques including contaminant mineralization and regeneration of cleanwater become very attractive. A bimetallic functional hollow nanoreactor defined as (Co@SiO<sub>2</sub>/Cu−X) was successfully constructed by coating a Cu-doped silica layer on the metal-organic framework (ZIF-67) followed by programmed calcination in nitrogen. The nanoreactor was endowed with a hollow configuration composed of mesoporous N-doping C-Silica hybrid shell encapsulated ultrafine Cu and Co metallic species. Such a configuration allows for the efficient diffusion and open reaction space of big contaminant molecules. The catalytic synergy of exposed Co−Cu bimetals and the easy accessibility of electron-rich contaminants by polar N doping sites triggered surface affinity make the optimal Co@SiO<sub>2</sub>/Cu-6 afford an excellent catalytic norfloxacin mineralization activity (7 min, k<sub>abs</sub>=0.744 min<sup>−1</sup>) compared to Cu-free Co@SiO<sub>2</sub>-6 (k<sub>abs</sub>=0.493 min<sup>−1</sup>) and Co-6 (k<sub>abs</sub>=0.378 min<sup>−1</sup>) Benefiting from the above unique advantages, Co@SiO<sub>2</sub>/Cu-6 show excellent removal performance in degrading different pollutants (carbamazepine, oxytetracycline, tetracycline, and bisphenol A) and persistent recycled stability in removing NFX. In addition, by virtue of the excellent photothermal properties, interfacial solar water evaporation application by Co@SiO<sub>2</sub>/Cu-6 was further explored to reach the regeneration of cleanwater (1.595 kg m<sup>−2</sup> h<sup>−1</sup>, 97.51 %). The integration of pollutant mineralization and solar water evaporation by creating the monolith evaporation by anchoring the Co@SiO<sub>2</sub>/Cu-6 onto the tailored melamine sponge allows the regeneration of cleanwater (1.6 kg⋅m<sup>−2</sup>⋅h<sup>−1</sup>) and synchronous pollutant removal (NFX, 95 %, 60 min), which provides potential possibility the treatment of complicated wastewater.</p>","PeriodicalId":149,"journal":{"name":"ChemSusChem","volume":"17 10","pages":""},"PeriodicalIF":7.5000,"publicationDate":"2024-04-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"A CuCo Bimetal Confined Hollow SiC Hybrid Photothermal Nanoreactor for the Integration of Pollutant Mineralization and Solar-Powered Water Evaporation\",\"authors\":\"Dr. Shuo Wang, Dr. Mengting Liu, Dr. Yarao Gao, Dr. Hongyao Zhao, Dr. Hongyang Zhu, Dr. Rongrong Du, Dr. Yuyang Zheng, Dr. Zengjing Guo, Dr. Yanyun Wang, Dr. Yiyan Song, Prof. Fu Yang\",\"doi\":\"10.1002/cssc.202400406\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Growing attention has been paid to the rational treatment of antibiotics-bearing medical wastewater. 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引用次数: 0
摘要
在此,我们成功地构建了一种双金属功能中空纳米反应器(Co@SiO2/Cu-X),其中空结构由介孔掺杂 N 的 C-Silica 杂化壳组成,其中包裹着超细 Cu 和 Co 金属物种。这种构型允许大杂质分子高效扩散并打开反应空间。外露 Co-Cu 双金属的催化协同作用,以及极性 N 掺杂位点引发的表面亲和力对富电子污染物的易接近性,使得最佳 Co@SiO2/Cu-6 与无 Cu 的 Co@SiO2-6 (kabs=0.493min-1)和 Co-6 相比,具有出色的诺氟沙星矿化催化活性(7 分钟,kabs=0.744 min-1)。493 min-1)和 Co-6(kabs=0.378 min-1)相比,Co@SiO2/Cu-6在降解不同污染物(卡马西平、土霉素、四环素和双酚 A)方面表现出优异的去除性能,并且在去除 NFX 方面具有持久的回收稳定性。此外,Co@SiO2/Cu-6 还凭借其优异的光热特性,进一步探索了界面太阳能水蒸发应用,实现了洁净水的再生(1.595 kg m-2 h-1, 97.51%)。通过将 Co@SiO2/Cu-6 固定在定制的三聚氰胺海绵上,形成整体蒸发,将污染物矿化和太阳能水蒸发结合起来,实现了净水再生(1.6 kg-m-2-h-1)和同步污染物去除(NFX,95%,60 分钟),为复杂废水的处理提供了可能。
A CuCo Bimetal Confined Hollow SiC Hybrid Photothermal Nanoreactor for the Integration of Pollutant Mineralization and Solar-Powered Water Evaporation
Growing attention has been paid to the rational treatment of antibiotics-bearing medical wastewater. However, the complexity of polluted wastewater makes the later comprehensive treatment difficult only by the Advanced Oxidation Process technique. Therefore, the coupled water treatment techniques including contaminant mineralization and regeneration of cleanwater become very attractive. A bimetallic functional hollow nanoreactor defined as (Co@SiO2/Cu−X) was successfully constructed by coating a Cu-doped silica layer on the metal-organic framework (ZIF-67) followed by programmed calcination in nitrogen. The nanoreactor was endowed with a hollow configuration composed of mesoporous N-doping C-Silica hybrid shell encapsulated ultrafine Cu and Co metallic species. Such a configuration allows for the efficient diffusion and open reaction space of big contaminant molecules. The catalytic synergy of exposed Co−Cu bimetals and the easy accessibility of electron-rich contaminants by polar N doping sites triggered surface affinity make the optimal Co@SiO2/Cu-6 afford an excellent catalytic norfloxacin mineralization activity (7 min, kabs=0.744 min−1) compared to Cu-free Co@SiO2-6 (kabs=0.493 min−1) and Co-6 (kabs=0.378 min−1) Benefiting from the above unique advantages, Co@SiO2/Cu-6 show excellent removal performance in degrading different pollutants (carbamazepine, oxytetracycline, tetracycline, and bisphenol A) and persistent recycled stability in removing NFX. In addition, by virtue of the excellent photothermal properties, interfacial solar water evaporation application by Co@SiO2/Cu-6 was further explored to reach the regeneration of cleanwater (1.595 kg m−2 h−1, 97.51 %). The integration of pollutant mineralization and solar water evaporation by creating the monolith evaporation by anchoring the Co@SiO2/Cu-6 onto the tailored melamine sponge allows the regeneration of cleanwater (1.6 kg⋅m−2⋅h−1) and synchronous pollutant removal (NFX, 95 %, 60 min), which provides potential possibility the treatment of complicated wastewater.
期刊介绍:
ChemSusChem
Impact Factor (2016): 7.226
Scope:
Interdisciplinary journal
Focuses on research at the interface of chemistry and sustainability
Features the best research on sustainability and energy
Areas Covered:
Chemistry
Materials Science
Chemical Engineering
Biotechnology