School of Resources & Environment and Safety Engineering, University of South China, Hengyang, Hunan, 421001, China.
School of Resources & Environment and Safety Engineering, University of South China, Hengyang, Hunan, 421001, China.
Chemosphere. 2023 Feb;314:137726. doi: 10.1016/j.chemosphere.2022.137726. Epub 2022 Dec 31.
A cobalt (Co)-doped perovskite molybdenum trioxide (α-MoO) catalyst (Co-MO) was synthesized by a facile pyrolysis strategy and used for degrading various organic contaminants via peroxymonosulfate (PMS) activation. The doped Co was inserted in the inter space between the octahedron [MoO], facilitating the growth of the α-MoO crystal on the [010] direction. This unique structure accelerated the activation of PMS as the Co-MO could function as a carrier for electron transfer to facilitate the Co(II)/Co(III) cycle in the Co-MO/PMS system. As a result, the Co-MO/PMS system showed noticeable activity for removing 100% bisphenol A (BPA) under a broad conditions within 30 min. The radical quenching test and electron paramagnetic resonance analysis revealed that singlet oxygen (O) was the main active species for BPA degradation in the Co-MO/PMS system, while free radicals, such as O, SO and •OH, were also produced as the intermediate species. Furthermore, the carrier mechanism may enable the Co-MO/PMS system maintain relatively high performance during repeat use, and also excellent adaptability was revealed by the well function in various water matrices and high activity in degrading various refractory organic pollutants. Our findings pave a useful avenue for the rational design of novel cobalt-doped catalysts with high catalytic performance toward wide environmental applications.
一种钴(Co)掺杂的钙钛矿三氧化钼(α-MoO)催化剂(Co-MO)通过简便的热解策略合成,并用于通过过一硫酸盐(PMS)活化来降解各种有机污染物。掺杂的 Co 插入八面体[MoO]之间的间隙中,促进了α-MoO 在[010]方向上的晶体生长。这种独特的结构加速了 PMS 的活化,因为 Co-MO 可以作为电子转移的载体,促进 Co-MO/PMS 体系中的 Co(II)/Co(III)循环。结果,Co-MO/PMS 体系在 30 分钟内,在广泛的条件下,对 100%双酚 A(BPA)的去除表现出显著的活性。自由基猝灭试验和电子顺磁共振分析表明,在 Co-MO/PMS 体系中,单线态氧(O)是 BPA 降解的主要活性物质,而自由基,如 O、SO 和•OH 等,也作为中间物质产生。此外,载体机制可能使 Co-MO/PMS 体系在重复使用过程中保持相对较高的性能,并且在各种水基质中表现出良好的功能和对各种难降解有机污染物的高活性,也显示出优异的适应性。我们的研究结果为合理设计具有广泛环境应用的新型高催化性能钴掺杂催化剂铺平了道路。