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  • American Scientific Publishers  (2)
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  • American Scientific Publishers  (2)
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  • 1
    Online Resource
    Online Resource
    American Scientific Publishers ; 2022
    In:  Journal of Biomaterials and Tissue Engineering Vol. 12, No. 9 ( 2022-09-01), p. 1683-1691
    In: Journal of Biomaterials and Tissue Engineering, American Scientific Publishers, Vol. 12, No. 9 ( 2022-09-01), p. 1683-1691
    Abstract: The emergence of bacterial resistance to traditional antibiotics and its global spread has brought huge threats to human life and health, and the need for new alternative antibacterial agents has become increasingly urgent. The rapid development of nanoscience provides a potential alternative to antibacterial therapy. In this study, g-C 3 N 4 was synthesized using melamine as the raw material. It was then successfully combined with carbon quantum dots (CQDs) and silver sulfide to synthesize a g-C 3 N 4 /CQDs/Ag 2 S composite material. Such combination narrows the band gap of g-C 3 N 4 from 2.53 eV to 2.21 eV and enhances the photocatalytic efficiency. Consequently, it indicated photocatalytic antimicrobial effects against three strands of bacteria, Shylococcus aureus (Grampositive), Escherichia coli (Gram-negative) and Methicillin-resistant Staphylococcus aureus under the irradiation of visible light. Other than the common pathogens, g-C 3 N 4 /CQDs/Ag 2 S exhibited an appreciable inhibition against the well-known drug-resistant bacteria. With its antimicrobial features and excellent photoelectric properties, the as prepared nanocomposites show its potential in the development of new antimicrobial and photocatalytic materials.
    Type of Medium: Online Resource
    ISSN: 2157-9083
    Language: English
    Publisher: American Scientific Publishers
    Publication Date: 2022
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  • 2
    Online Resource
    Online Resource
    American Scientific Publishers ; 2018
    In:  Journal of Nanoscience and Nanotechnology Vol. 18, No. 12 ( 2018-12-01), p. 8169-8177
    In: Journal of Nanoscience and Nanotechnology, American Scientific Publishers, Vol. 18, No. 12 ( 2018-12-01), p. 8169-8177
    Abstract: The actual casting filling process can be deemed as the coupled flow of air, molten metal and solid-phase particles (such as slag) inside the cavity, which may cause air entrapment, slag inclusion and other casting defects, and affect the quality of casting. Through computation simulation of the casting filling process on the basis of smoothed particle hydrodynamics (SPH) method, it can not only precisely track the motion trajectories of air, molten metal and slag particles, but also precisely predict air entrapment, slag inclusion and other casting defects. This paper established a mathematical model of gas–liquid–solid three-phase flow for the SPH-based casting filling process. The model eliminated the instability of gas–liquid interface pressure by introducing the corrected gas–liquid two-phase momentum equation, and maintained a clear interface between air and molten metal by introducing the surface tension model. In addition, it introduced the motion model of rigid body to deal with the coupled flow process of slag, air and molten metal. The mathematical model established in this paper was used to calculate the bubble floating and the flowing process of the gas–liquid two-phase during mold filling through the bottom side of the injection cavity and of the gas–liquid–solid three-phase flow during mold filling for casting of plate (the plate was composite reinforced with nano SiC, and the viscosity of the composite melt was calculated from the viscosity formula of the composite melt). The calculated results were compared with the experimental results to verify the accuracy and validity of the mathematical model established.
    Type of Medium: Online Resource
    ISSN: 1533-4880
    Language: English
    Publisher: American Scientific Publishers
    Publication Date: 2018
    SSG: 11
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