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原位制备钛亚氧化物-激光诱导石墨烯复合材料:去除有机污染物和 MS2 噬菌体。

In-situ fabrication of titanium suboxide-laser induced graphene composites: Removal of organic pollutants and MS2 Bacteriophage.

机构信息

Environmental Science and Engineering Department (ESED), Indian Institute of Technology Bombay, Mumbai, 400076, India.

Centre for Research in Nanotechnology & Science (CRNTS), Indian Institute of Technology Bombay, Mumbai, 400076, India.

出版信息

Chemosphere. 2023 Sep;335:138988. doi: 10.1016/j.chemosphere.2023.138988. Epub 2023 May 27.

Abstract

Titanium suboxides (TSO) are identified as a series of compounds showing excellent electro- and photo-chemical properties. TSO composites with carbon-based materials such as graphene have further improved water splitting and pollutant removal performance. However, their expensive and multi-step synthesis limits their wide-scale use. Furthermore, recently discovered laser-induced graphene (LIG) is a single-step and low-cost fabrication of graphene-based composites. Moreover, LIG's highly electrically conductive surface aids in tremendous environmental applications, including bacterial inactivation, anti-biofouling, and pollutant sensing. Here, we demonstrate the single-step in-situ fabrication of TSO-LIG composite by directly scribing the TiO mixed poly(ether) sulfone sheets using a CO infrared laser. In contrast, earlier composites were derived from either commercial-grade TSO or synthesized TSO with graphene in multi step processes. The characteristic Ti peaks in XPS confirmed the conversion of TiO into its sub-stoichiometric form, enhancing the electro-catalytical properties of the LIG-TiO composite surface. Electrochemical characterization, including impedance spectroscopy, validated the surface's enhanced electrochemical activity and electrode stability. Furthermore, the LIG-TiO composite surfaces were tested for anti-biofouling action and electrochemical application as electrodes and filters. The composite electrodes exhibit enhanced degradation performance for removing emerging pollutant antibiotics ciprofloxacin and methylene blue due to the in-situ hydroxyl radical generation. Additionally, the LIG-TiO conductive filters showed the complete 6-log killing of mixed bacterial culture and MS2 phage virus in flow-through filtration mode at 2.5 V, which is ∼2.5-log more killing compared to non-composited LIG filers at 500 Lmh. Nevertheless, these cost-effective LIG-TiO composites have excellent electrical properties and can be effectively utilized for energy and environmental applications.

摘要

钛亚氧化物 (TSO) 被鉴定为一系列具有优异的电化学和光电化学性能的化合物。TSO 与石墨烯等碳基材料的复合材料进一步提高了水分解和污染物去除性能。然而,它们昂贵且多步合成限制了它们的广泛应用。此外,最近发现的激光诱导石墨烯 (LIG) 是一种单步、低成本制造石墨烯基复合材料的方法。此外,LIG 高导电性表面有助于许多环境应用,包括细菌失活、抗生物污染和污染物感应。在这里,我们通过直接使用 CO 红外激光刻划 TiO 混合聚醚砜片,展示了 TSO-LIG 复合材料的一步原位制造。相比之下,早期的复合材料是通过商业级 TSO 或多步合成具有石墨烯的 TSO 获得的。XPS 中的特征 Ti 峰证实了 TiO 转化为亚化学计量形式,增强了 LIG-TiO 复合表面的电催化性能。电化学特性,包括阻抗谱,验证了表面增强的电化学活性和电极稳定性。此外,对 LIG-TiO 复合表面进行了抗生物污染作用和电化学应用测试,作为电极和过滤器。由于原位羟基自由基的产生,复合电极表现出增强的去除新兴污染物抗生素环丙沙星和亚甲基蓝的降解性能。此外,在 2.5 V 的流量过滤模式下,LIG-TiO 导电过滤器对混合细菌培养物和 MS2 噬菌体病毒的完全 6 对数杀灭率为 2.5,比非复合 LIG 过滤器在 500 Lmh 时的杀灭率高 2.5 对数。然而,这些具有成本效益的 LIG-TiO 复合材料具有优异的电性能,可有效用于能源和环境应用。

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