首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >CdIn2S4 microsphere as an efficient visible-light-driven photocatalyst for bacterial inactivation: Synthesis, characterizations and photocatalytic inactivation mechanisms
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CdIn2S4 microsphere as an efficient visible-light-driven photocatalyst for bacterial inactivation: Synthesis, characterizations and photocatalytic inactivation mechanisms

机译:CdIn2S4微球作为细菌灭活的有效可见光驱动光催化剂:合成,表征和光催化灭活机理

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摘要

New types of visible-light-driven photocatalysts with high activity for bacterial inactivation are needed to address the problems caused by outbreak of harmful microorganisms. In this study, cadmium indium sulfide (CdIn2S4) microsphere, which can be synthesized continuously by a facile ultrasonic spray pyrolysis method, was used as an efficient photocatalyst in inactivation of Escherichia coli K-12 under visible light (VL) irradiation for the first time. The as-prepared CdIn2S4 showed a micro-spherical morphology with diameter of 0.5-1.0 jim. It had an energy band gap of 2.02 eV and BET surface area of 34.8 m~2/g. It was found that bacterial cells could also be effectively inactivated inside a partition system without the direct contact with the photocatalyst, which was attributed to the diffusible photon-generated hydrogen peroxide (H2O2) rather than hydroxyl radicals (OH). Large amounts of H2O2 were produced from both conduction and valance bands with the involvement of superoxide ("O2"). The used CdIn2S4 could be easily recycled by the partition system without loss of activity. The destruction process of bacterial cells was from the cell wall to the intracellular components as confirmed by TEM study. In addition, the O2~-and OH radicals were also detected in the CdIn2S4-VL system by ESR spin-trap with DMPO trapping technology.
机译:为了解决由有害微生物爆发引起的问题,需要新型的对细菌失活具有高活性的可见光驱动的光催化剂。在这项研究中,首次通过可见的超声喷雾热解法连续合成的硫化镉铟(CdIn2S4)微球首次用作在可见光(VL)照射下灭活大肠杆菌K-12的有效光催化剂。 。所制备的CdIn 2 S 4表现出微球形的形态,直径为0.5-1.0μm。它的能带隙为2.02 eV,BET表面积为34.8 m〜2 / g。发现细菌细胞也可以在不直接接触光催化剂的情况下在分隔系统内有效失活,这归因于可扩散的光子产生的过氧化氢(H2O2)而不是羟基自由基(OH)。在超氧化物(“ O2”)的参与下,导带和价带均产生大量H2O2。所使用的CdIn2S4可以很容易地被分配系统回收,而不会损失活性。 TEM研究证实,细菌细胞的破坏过程是从细胞壁到细胞内组分。此外,通过DMPO捕集技术通过ESR自旋捕集在CdIn2S4-VL系统中还检测到O2〜和OH自由基。

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