Department of Civil Engineering, Yeungnam University, Gyeongsan, 38541, South Korea.
Dalton Trans. 2022 Sep 20;51(36):13646-13656. doi: 10.1039/d2dt02299k.
Excessive drug usage and sewage discharges containing antibiotics have caused water contamination due to the rapid growth of pharmaceutical industries. Tetracycline (TC) is one of the most frequently applied antibiotics having a significant impact on the aquatic environment, water quality and human health and thus effective approaches for TC removal from water are urgently needed. Here, we have fabricated P-doped CdS (CdS-P) nanorods (NRs) by one-step thermal phosphorization treatment for TC degradation through photocatalytic reaction in the presence of blue and white LED light irradiation. Synthesized photocatalysts were characterized to authenticate the incorporation of P atoms on the CdS NR surface using XPS, XRD, ICP-OES and EDX mapping analyses. CdS-P NRs have greater photocatalytic activity for tetracycline degradation under blue LED light irradiation. TC degradation on CdS-P NRs followed pseudo-first order kinetics for both LED light sources. In the presence of blue LED light at an intensity of 10 mW cm, TC degradation efficiency and pseudo-first order rate constants of CdS-P NRs for the photocatalytic degradation reaction reached 95.4% and 0.13396 min in 20 minutes without any supplemental oxygen sources. Scavenging experiments demonstrate that reactive oxygen species are produced during the photocatalytic degradation of tetracycline. As a result, due to the extensive utilization of photogenerated oxidative species such as h, O˙ and OH˙, CdS-P NRs demonstrated high photocatalytic tetracycline degradation efficiency in 20 minutes. Our findings shed more light on nonmetal P doping on CdS materials and other semiconductors, exploring new possibilities for photocatalytic degradation to efficiently reduce the amount and toxicity of TC antibiotics in wastewater.
由于制药工业的快速发展,过度的药物使用和含有抗生素的污水排放导致了水污染。四环素(TC)是应用最广泛的抗生素之一,对水生态环境、水质和人类健康有重大影响,因此迫切需要从水中去除 TC 的有效方法。在这里,我们通过一步热磷化处理,在蓝光和白光 LED 光照射下,通过光催化反应,制备了掺磷的 CdS(CdS-P)纳米棒(NRs),用于 TC 的降解。通过 XPS、XRD、ICP-OES 和 EDX 映射分析对合成的光催化剂进行了表征,以验证 P 原子在 CdS NR 表面的掺入。CdS-P NRs 在蓝光 LED 光照射下对四环素的降解具有更高的光催化活性。TC 在 CdS-P NRs 上的降解遵循两种 LED 光源的伪一级动力学。在强度为 10 mW cm 的蓝光 LED 光存在下,CdS-P NRs 对光催化降解反应的 TC 降解效率和伪一级速率常数在 20 分钟内达到 95.4%和 0.13396 min,而无需任何补充氧气源。清除实验表明,在四环素的光催化降解过程中会产生活性氧物质。因此,由于光生氧化性物质(如 h+、O˙和 OH˙)的广泛利用,CdS-P NRs 在 20 分钟内表现出高效的光催化 TC 降解效率。我们的研究结果为 CdS 材料和其他半导体的非金属 P 掺杂提供了更多的启示,探索了光催化降解的新可能性,以有效地减少废水中 TC 抗生素的数量和毒性。