School of Material Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, 639798, Singapore.
School of Material Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, 639798, Singapore; School of Biological Sciences, Nanyang Technological University Singapore, 60 Nanyang Drive, 637551, Singapore; Environmental Chemistry and Materials Centre, Nanyang Environment & Water Research Institute, 1 CleanTech Loop, CleanTech One, 637141, Singapore; Energy Research Institute, Nanyang Technological University Singapore, 50 Nanyang Drive, 637553, Singapore.
Chemosphere. 2022 Jan;286(Pt 3):131869. doi: 10.1016/j.chemosphere.2021.131869. Epub 2021 Aug 12.
Improving the efficiencies of organic compound degradations by catalytic materials is a challenging materials research field. In our research, we successfully synthesized cobalt-based polyoxometalates (CoV-POMs) via a simple crystallization-driven self-assembly method. The incorporation of the newly synthesized CoV-POMs into peroxymonosulphate (PMS), forming a mixture, greatly enhancing the catalytic activation for a complete degradation of dye solution. The positive synergic effect between CoV-POMs and PMS was substantiated by a relatively meager degradation of less than 10% in the system without CoV-POMs, in which CoV-POMs played a vital role to activate PMS towards free radicals generation for dye degradation. Methylene blue (MB) and rhodamine B (RB) dyes were completely decolorized under 60 min with the presence of 40 mg/L CoV-POMs and 150 mg/L PMS. The CoV-POMs/PMS system was pH dependance with a lower dye degradation efficiency at elevated pH. The effect of pH was more prominent in RB dye, in which the degradation efficiency dropped drastically from 93.3% to 41.12% with the increase in the solution pH from 7 to 11. The quenching tests suggested that sulfate radicals were the dominant active species involving in the dye degradation reaction. Besides MB and RB dyes, CoV-POMs/PMS system also showed significant activity towards the degradation of phenol red (PR) and methyl orange (MO) dyes. In the biological test, CoV-POMs exhibited non-toxic behavior towards normal cells that reduced safety concern for the large-scale wastewater treatment application. In addition, the testing divulged the anticancer property of CoV-POMs with more than 35 % of A549 lung adenocarcinoma and MDA-MB-231 breast adenocarcinoma were killed with 250 mg/L CoV-POMs. The selective lethality of CoV-POMs towards cancer cells was found to be caused by different extents of cellular apoptosis. In overall, the synthesized bifunctional CoV-POMs manifested superior activities in the examined applications, specifically dye degradation and anticancer.
通过催化材料提高有机化合物降解效率是一个具有挑战性的材料研究领域。在我们的研究中,我们成功地通过一种简单的晶化驱动自组装方法合成了钴基多金属氧酸盐(CoV-POMs)。将新合成的 CoV-POMs 掺入过一硫酸盐(PMS)中,形成混合物,极大地增强了催化活性,可完全降解染料溶液。在没有 CoV-POMs 的系统中,降解率低于 10%,这证明了 CoV-POMs 和 PMS 之间存在正协同效应,因为 CoV-POMs 在激活 PMS 生成自由基以降解染料方面发挥了至关重要的作用。在存在 40mg/L CoV-POMs 和 150mg/L PMS 的情况下,亚甲基蓝(MB)和罗丹明 B(RB)染料在 60 分钟内完全脱色。CoV-POMs/PMS 体系对 pH 值有依赖性,在升高的 pH 值下,染料降解效率较低。pH 的影响在 RB 染料中更为明显,当溶液 pH 值从 7 增加到 11 时,降解效率从 93.3%急剧下降到 41.12%。猝灭试验表明,硫酸根自由基是参与染料降解反应的主要活性物质。除了 MB 和 RB 染料外,CoV-POMs/PMS 体系对苯酚红(PR)和甲基橙(MO)染料的降解也表现出显著的活性。在生物测试中,CoV-POMs 对正常细胞表现出非毒性行为,降低了大规模废水处理应用的安全隐患。此外,测试还揭示了 CoV-POMs 的抗癌特性,用 250mg/L CoV-POMs 可杀死超过 35%的 A549 肺腺癌细胞和 MDA-MB-231 乳腺腺癌细胞。CoV-POMs 对癌细胞的选择性致死性被发现是由于细胞凋亡的不同程度造成的。总的来说,合成的双功能 CoV-POMs 在所检查的应用中表现出优异的活性,特别是在染料降解和抗癌方面。