AI Article Synopsis

  • The co-existence of hazardous chemicals and pathogens in wastewater poses serious risks to the environment and human health, necessitating effective strategies for pollution mitigation.
  • This study investigates the combined effectiveness of TiO and Cu-TiO nanoparticles, along with non-thermal atmospheric pressure plasma (NTAPP), in killing bacteria and degrading textile wastewater.
  • Synthesis and characterization of the nanoparticles revealed that copper doping improved their photocatalytic efficiency, while various plasma treatments demonstrated significant bacterial inactivation and degradation of pollutants, supported by spectroscopic analyses.

Article Abstract

The simultaneous presence of hazardous chemicals and pathogenic microorganisms in wastewater is tremendously endangering the environment and human health. Therefore, developing a mitigation strategy for adequately degrading toxic compounds and inactivating/killing microorganisms is urgently needed to protect ecosystems. In this paper, the synergetic effects of the photocatalytic activity of TiO and Cu-TiO nanoparticles (NPs) and the oxidation processes of non-thermal atmospheric pressure plasma (NTAPP) were comprehensively investigated for both the inactivation/killing of common water contaminating bacteria ( ()) and the degradation of direct textile wastewater (DTW). The photocatalytic NPs were synthesized using the hydrothermal method and further characterized employing field emission scanning electron microscopy (FESEM), X-ray diffraction (XRD), ultraviolet-visible diffuse reflection spectroscopy (UV-Vis DRS) and photoluminescence (PL). Results revealed the predominant presence of the typical anatase phase for both the flower-like TiO and the multipod-like Cu-TiO structures. UV-Vis DRS and PL analyses showed that the addition of Cu dopants reduced the bandgap and increased oxygen defect vacancies of TiO. The inactivation of in suspension and degradation of DTW were then examined upon treating the aqueous media with various plasma alone and plasma/NPs conditions (Ar plasma, Ar + O plasma and Ar + N plasma, Ar plasma + TiO NPs and Ar plasma + Cu-TiO NPs). Primary and secondary excited species such as OH˙, O, H and N* generated in plasma during the processes were recognized by optical emission spectrometry (OES) measurements. Several other spectroscopic analyses were further employed to quantify some reactive oxygen species (ROS) such as OH, HO and O generated during the processes. Moreover, the changes in the pH and electrical conductivity (EC) of the solutions were also assessed. The inactivation of bacteria was examined by the colony-forming unit (CFU) method after plating the treated suspensions on agar, and the degradation of organic compounds in DTW was further validated by measuring the total organic carbon (TOC) removal efficiency. All results collectively revealed that the combinatorial plasma-photocatalysis strategy involving Cu-TiO NPs and argon plasma jet produced higher concentrations of ROS and proved to be a promising one-step wastewater treatment effectively killing microorganisms and degrading toxic organic compounds.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9093588PMC
http://dx.doi.org/10.1039/d1ra09337aDOI Listing

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