催化作用
电子顺磁共振
化学
激进的
氧化物
石墨烯
吸附
退火(玻璃)
材料科学
表面改性
化学工程
核化学
无机化学
光化学
降级(电信)
有机化学
纳米技术
物理化学
复合材料
核磁共振
计算机科学
工程类
物理
电信
作者
Xiao Chen,Wen‐Da Oh,Zhong-Ting Hu,Yuanmiao Sun,Richard D. Webster,Shuzhou Li,Teik‐Thye Lim
标识
DOI:10.1016/j.apcatb.2017.11.071
摘要
Nitrogen-doped graphenes (NG) fabricated through thermal annealing of graphene oxide (GO) and urea was applied to activate peroxymonosulfate (PMS) for sulfacetamide (SAM) degradation. The contents of reactive functional groups (graphitic N, pyridinic N, pyrrolic N, nitric oxide and CO) and catalytic performance of NG were delicately controlled by adjusting thermal annealing temperature. Thermal annealing temperature of ≥500°C was required to produce the NG endowed with catalytic activity for SAM degradation via PMS activation. NG600 (NG prepared at 600°C) with a high N doping level (16.0 wt%) and a most optimum amount of pyridinic N (38.4%N), pyrrolic N (31.8%N), graphitic N (25.9%N) and CO groups (43.7%O) exhibited the most outstanding catalytic activity to activate PMS. NG600 with the controlled N bonding configurations possessed a higher SAM degradation efficiency than NGs prepared via other optimized synthesis methods The specific surface area (SSA) contributed less significantly than N doping to the SAM degradation performance. Increments in the PMS dosage and catalyst loading were both conducive to the catalytic performance of NG. The presence of NO3− in the NG600/PMS system had a negligible influence on SAM degradation but Cl− and humic acid decreased the SAM degradation rate. Experiments using chemical scavengers and electron paramagnetic resonance (EPR) study revealed that SAM degradation process follows predominantly the radical pathway with sulfate radical (SO4−) as the main reactive oxygen species over the non-radical pathway. Density functional theory (DFT) calculations suggest that graphitic N can facilitate PMS adsorption on the NG and SAM degradation. This study improves the understanding on the role of different surface N functional groups of NG in the PMS activation.
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