Min Long, Ciyuan Huang, Xiao Huang, Linji Yang, Liangsheng Chen, Ke Sun, Caiyun Wang, Liying Zhang, Libin Zhang, Songlin Cai, Shangfei Yao, Hongxiang Zhu, Tao Yang, Bingsuo Zou, Tao Liu
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引用次数: 0
摘要
卡马西平是公认的最普遍的药物之一,由于其对生态系统和人类健康的潜在影响而备受关注。为此,本研究合成了一种新型环保且经济高效的有机半导体光催化剂 PM6:Y6:ITCPTC,并对其进行了表征,同时添加了椰壳炭,然后研究了其光催化去除卡马西平的性能。值得注意的是,卡马西平在一个光照强度下暴露 20 分钟内的光降解效率就超过了 99%,在 50 W 的低光照强度下也表现出良好的效果。PM6:Y6:ITCPTC 的高光催化活性主要归功于第三种成分(名为 ITCPTC)的加入,它能增强激子解离和载流子转移,产生超氧自由基、电子和空穴。此外,根据测得的中间产物和密度泛函理论计算,提出了卡马西平的合理降解途径。
Efficient photodegradation of carbamazepine by organocatalysts incorporating a third component with a more complementary absorption spectrum.
Carbamazepine, recognized as one of the most prevalent pharmaceuticals, has attracted considerable attention due to its potential impact on ecosystems and human health. In response, this work synthesized and characterized a novel environmentally friendly and cost-effective organic semiconductor photocatalyst PM6:Y6:ITCPTC loaded with coconut shell charcoal, and then investigated its performance for photocatalytic removal. Remarkably, carbamazepine demonstrated a photodegradation efficiency exceeding 99% within a mere 20 minutes of exposure to one sunlight intensity, and also showed good effectiveness under a low light intensity of 50 W. The catalyst exhibited exceptional reusability and stability, maintaining degradation efficiency between 95-99% over 25 cycles. The high photocatalytic activity of PM6:Y6:ITCPTC is primarily attributed to the incorporation of the third component (named ITCPTC), which enhances exciton dissociation and carrier transfer, generating superoxide radicals, electrons, and holes. Furthermore, the plausible degradation pathway of carbamazepine was proposed based on the measured intermediates and density functional theory calculations.