State Key Laboratory of Vanadium and Titanium Resources Comprehensive Utilization, Pangang Group Research Institute Co., Ltd., Panzhihua, 617000, PR China; Chemistry & Chemical Engineering Data Center, Institute of Process Engineering, Chinese Academy of Sciences, Beijing, 100190, China; State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing, 100029, PR China.
Beijing Key Laboratory of Functional Materials for Building Structure and Environment Remediation, Beijing University of Civil Engineering and Architecture, Beijing, 100044, China.
Chemosphere. 2023 Oct;338:139495. doi: 10.1016/j.chemosphere.2023.139495. Epub 2023 Jul 12.
Cobalt 2-methylimidazole (ZIF-67) have abundant nitrogen and cobalt elements, which can be used as an excellent precursor for catalyst synthesis. In this study, a new Co, N co-doped carbon-based catalyst (Co-N-BC) was synthesized from ZIF-67 and biochar, which can significantly improve the degradation of 4-nitrophenol (4-NP) in catalytic ozonation. The mineralization rate of 4-NP achieves 65.8% within 60 min. The catalyst showed high recycling stability in the four cycles of reuse experiment. Different operating parameters, such as solution pH, the concentration of O and 4-NP, have been studied in the Co-N-BC catalytic ozonation. O, O· and ·OH are determined as the main reactive species for 4-NP degradation, and ·OH is especially responsibly for 4-NP mineralization. The existence of inorganic ions, such as Cl, NO, CO and PO, all significantly inhibited the degradation of 4-NP to different extend, respectively. The effect of substituent on a series of organics with similar structure of 4-NP was also investigated in Co-N-BC catalytic ozonation. This study provides a new composite material for heterogeneous catalytic ozonation, which is very promising in 4-NP contained complex wastewater treatment.
钴 2-甲基咪唑(ZIF-67)具有丰富的氮和钴元素,可用作合成催化剂的优秀前体。在这项研究中,我们从 ZIF-67 和生物炭合成了一种新型的钴、氮共掺杂碳基催化剂(Co-N-BC),它可以显著提高催化臭氧化降解 4-硝基苯酚(4-NP)的效率。在 60 分钟内,4-NP 的矿化率达到 65.8%。在重复使用的四次循环实验中,该催化剂表现出了很高的循环稳定性。我们研究了不同的操作参数,如溶液 pH 值、O 和 4-NP 的浓度等,在 Co-N-BC 催化臭氧化过程中的影响。确定 O、O·和·OH 是 4-NP 降解的主要活性物质,而·OH 特别负责 4-NP 的矿化。Cl、NO、CO 和 PO 等无机离子的存在都不同程度地显著抑制了 4-NP 的降解。我们还研究了 Co-N-BC 催化臭氧化中一系列具有类似 4-NP 结构的有机物取代基的影响。本研究为异相催化臭氧化提供了一种新型复合材料,在处理含有 4-NP 的复杂废水方面具有广阔的应用前景。