Yuge Wang, Lipei Ren, Yan Zhuang, Dongfang Liu, Zhixun Zhang, Lei Zhuo, Qian Zhang, Xiwei Guo, Xingfang Xiao, He Zhu
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Notably, the enhancement of local wettability by titanium dioxide films on carbon fiber felts promotes photothermal efficiency. The carbon fiber felts decorated with titanium dioxide films demonstrate an evaporation rate of 1.19 kg m<sup>−2</sup> h<sup>−1</sup>, achieving an efficiency of 72.5 % under 1 sun. The experimental results reveal that the local thermal effect can effectively enhance catalytic degradation. CIP is almost completely degraded under sunlight, whereas the degradation efficiency under UV light is 55.8%. Specifically, we observe that CIP can be effectively degraded in purified water and condensed water. Moreover, the carbon fiber felts decorated with titanium dioxide films exhibit multidirectional degradation performance and stable physical and chemical properties, maintaining stable photothermal and photocatalytic performance even after prolonged sunlight exposure and repeated use. 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引用次数: 0
摘要
光催化是一种可再生的、环保的工艺,在水中环丙沙星(CIP)的净化中具有很大的潜力。然而,传统的方法往往侧重于光催化剂的设计,而对光热性能的关注较少,导致纯化率有限。在这里,我们提出了一种光热-光催化纺织品,基于碳纤维毡装饰均匀的二氧化钛膜,以有效地净化水中的CIP。用二氧化钛薄膜装饰的碳纤维毡具有很高的太阳能吸收率(~ 93%),用于太阳能水蒸发和同时用于CIP净化的光催化降解。值得注意的是,二氧化钛薄膜增强了碳纤维毡的局部润湿性,提高了光热效率。用二氧化钛薄膜装饰的碳纤维毡的蒸发速率为1.19 kg m−2 h−1,在一个太阳下达到72.5%的效率。实验结果表明,局部热效应能有效增强催化降解。CIP在日光下几乎完全降解,而在紫外光下的降解效率为55.8%。具体来说,我们观察到CIP可以在纯净水和冷凝水中有效地降解。此外,二氧化钛膜修饰的碳纤维毡具有多向降解性能和稳定的物理化学性能,即使长时间暴露在阳光下和重复使用,也能保持稳定的光热和光催化性能。这项工作为利用丰富的阳光进行抗生素降解提供了一个范例。
A Photothermal-Photocatalytic Textile With Efficient Thermal Management for Boosting Ciprofloxacin Purification
Photocatalysis is a renewable and eco-friendly process with great potential for the purification of ciprofloxacin (CIP) in water. However, conventional methods tend to focus on the design of photocatalysts, which pays less attention to the photothermal performance, resulting in a limited purification rate. Here, we propose a photothermal-photocatalytic textile based on carbon fiber felts decorated with homogeneous titanium dioxide films to efficiently purify CIP in water. The carbon fiber felts decorated with titanium dioxide films show high solar absorption (∼93 %) for solar water evaporation and simultaneous photocatalytic degradation for CIP purification. Notably, the enhancement of local wettability by titanium dioxide films on carbon fiber felts promotes photothermal efficiency. The carbon fiber felts decorated with titanium dioxide films demonstrate an evaporation rate of 1.19 kg m−2 h−1, achieving an efficiency of 72.5 % under 1 sun. The experimental results reveal that the local thermal effect can effectively enhance catalytic degradation. CIP is almost completely degraded under sunlight, whereas the degradation efficiency under UV light is 55.8%. Specifically, we observe that CIP can be effectively degraded in purified water and condensed water. Moreover, the carbon fiber felts decorated with titanium dioxide films exhibit multidirectional degradation performance and stable physical and chemical properties, maintaining stable photothermal and photocatalytic performance even after prolonged sunlight exposure and repeated use. This work provides a paradigm for harnessing the abundant sunlight for antibiotic degradation.