介孔材料
微球
降级(电信)
双氯芬酸
介孔二氧化硅
化学
化学工程
核化学
材料科学
催化作用
有机化学
电信
生物化学
计算机科学
工程类
作者
Hao Luo,Hao Luo,Junli Zheng,Haoyu Luo,Haoyu Luo,Yuxin Liu,Chen Zeng,Yajie Wu,Qintie Lin
标识
DOI:10.1021/acsestengg.5c00035
摘要
This study demonstrated that the core–shell structure plays a critical role in promoting the redox reactions of peroxymonosulfate (PMS) with nanoconfined Co 3 O 4, facilitating the generation of O 2 •– as reactive oxygen species (ROS) for diclofenac (DCF) elimination, and thereby the first-order rate constant of the nanoconfined Co 3 O 4 within hollow mesoporous silica microspheres (Co@C-HMSMs, k obs = 0.1813 min –1 ) outperformed that of the aggregated Co 3 O 4 supported on carbon (Co@C, without the core–shell structure) by a factor of 27.47. The electron paramagnetic resonance (EPR) spectra, probe quantifications, and molecular dynamics simulations demonstrated that Co@C-HMSMs induced the nanoconfinement effect and thus increased the efficient utilization of low concentrations of PMS (84.5% for 0.1 mM) for O 2 •– production by enriching the DCF and PMS molecules, reducing mass transfer distance, and enhancing the probability of molecular collisions, which effectively promoted DCF degradation. Meanwhile, Fukui function and toxicity analysis revealed that the higher f 0 (0.0567) value of the Cl atomic site on DCF was vulnerable to be attacked by O 2 •–, generating the dechlorination products with less toxicity. Therefore, the O 2 •– -dominated dechlorination pathway for DCF oxidation presented a lower risk compared to the • OH-dominated hydroxylation pathway (hydroxylated products with higher toxicity), increasing the potential of Co@C-HMSMs for practical applications in antibiotic elimination.
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