首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Photocatalytic indoor/outdoor air treatment and bacterial inactivation on CuxO/TiO2 prepared by HiPIMS on polyester cloth under low intensity visible light
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Photocatalytic indoor/outdoor air treatment and bacterial inactivation on CuxO/TiO2 prepared by HiPIMS on polyester cloth under low intensity visible light

机译:光催化室内/室外空气处理和细菌灭活在低强度可见光下涤纶布上的HIPIMS在涤纶布上制备的Cuxo / TiO2

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In this study, photoactive CuxO/TiO2 coatings were prepared using magnetron sputtering operated at different powers and modes (Direct-current magnetron sputtering and High Power Impulse magnetron sputtering). Indoor/outdoor air pollutions (Volatile Organic Compounds, VOCs) degradation have been dramatically reduced on sputtered CuxO/TiO2 on polyester (PES) cloth under low intensity visible light. The Low intensity visible light was used to irradiate the sputtered photocatalysts, which degraded various VOC molecules concomitant with a bacterial inactivation ability. The VOC removal kinetics were studied in the dark and under visible light as a function of the deposition time and applied peak currents during the coating by HiPIMS. High concentrations of chloroform and butyraldehyde were shown to be degraded (90% and 85%, respectively) on CuxO/TiO2-PES fabrics under daylight irradiation. The repetitive reuse of the sputtered coatings was also investigated showing the long operational lifetime of the prepared fabrics. The deposition rates of Ti and Cu atoms and their atomic distribution along the sputtered film have been investigated by Transmission Electronic Microscopy (TEM). Redox catalysis was shown to happen within the VOC degradation time as detected by X-ray Photoelectron Spectroscopy (XPS). Deconvolution of the Cu2p3/2 peak in the CuxO/TiO2 on PES samples showed changes in the Cu2O and CuO within the VOCs degradation and the bacterial inactivation. The interfacial charge transfer (IFCT) between CuxO induced under light leading to VOCs oxidation path seemed to require a low photons energy and were able to oxidize the pollutants even at high concentrations. The mechanisms involving the VOCs degradation on CuxO/TiO2 catalysts are suggested in which the holes generated by Cu2O transfer to TiO2 in the TiO2 (n)/CuxO(p) in the hetero-junction. This transfer is favored by the electrostatic interaction between both semiconductors. The photo-generated ROS, mainly (OH)-O-center dot-radicals were determined by fluorescence method. The possible contribution of the (OH)-O-center dot-radicals in the bacterial inactivation on the sputtered CuxO/TiO2 catalysts was discussed. DRS, TEM, contact angle (CA) and XPS were used to characterize the catalyst optical and structural properties.
机译:在该研究中,使用在不同功率和模式下操作的磁控溅射制备光活性Cuxo / TiO2涂层(直流磁控溅射和高功率脉冲磁控溅射)。在低强度可见光下,在聚酯(PES)布上的溅射的Cuxo / TiO 2上,室内/室外空气污染(挥发性有机化合物,VOC)降解已显着降低。使用低强度可见光来照射溅射的光催化剂,其降解了各种VOC分子,伴随着细菌灭活能力。根据沉积时间的函数和施加在涂层期间,在深色和可见光下研究VOC去除动力学。在日光照射下,显示高浓度的氯仿和丁醛和丁醛分别降解(分别为90%和85%)。还研究了溅射涂层的重复再利用,显示了制备织物的长操作寿命。通过透射电子显微镜(TEM)研究了Ti和Cu原子的沉积速率及其沿着溅射膜的原子分布。显示氧化还原催化在X射线光电子能谱(XPS)检测到的VOC劣化时间内发生。在PES样品上的Cuxo / TiO2中Cu2P3 / 2峰的去卷积显示在VOCS降解和细菌失活的Cu2O和CuO中的变化。在导致VOCS氧化路径的光线下诱导的沟槽之间的界面电荷转移(IFCT)似乎需要低光子能量,并且能够在高浓度下氧化污染物。提出了涉及VOCS降解的VOCS降解的机制,其中Cu 2 O在杂连接中的TiO 2(N)/杂环(P)中转移至TiO 2的孔。该转移受到两个半导体之间的静电相互作用的青睐。主要(OH)-O-中心点自由基通过荧光法测定光生成的ROS。讨论了(OH)-O-中心点 - 在溅射的杂环/ TiO2催化剂上的细菌灭活中的可能贡献。 DRS,TEM,接触角(CA)和XPS用于表征催化剂光学和结构性能。

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