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Effects of divalent copper on tetracycline degradation and the proposed transformation pathway

机译:二价铜对四环素降解和提出的转化途径的影响

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To reveal the characteristics of tetracycline (TC) photocatalytic degradation under Cu(II) coexistence, effects of Cu(II) on TC photocatalytic degradation by ZnO nanoparticles (ZnO NPs) as a function of pH, humic acid (HA), and initial Cu(II) concentration were investigated. Interaction of TC with Cu(II) in the treatment process was analyzed by circular dichroism (CD) spectroscopy, while TC degradation pathway was investigated by high-performance liquid chromatography-mass spectrometry. Sixty-five percent and ninety-one percent TC degradation within 60 min in the absence and presence of Cu(II), respectively, was reported. Both adsorption and photocatalytic degradation of TC under Cu(II) coexistence increased with increasing pH from 3 to 6, while decreased with further increase in pH. HA inhibited the degradation of TC by ZnO NPs both in the presence as well absence of Cu(II), while TC degradation decreased from 91 to 73% and from 73 to 37% in the presence and absence of Cu(II), respectively. TC degradation by ZnO NPs first increased then decreased with increasing Cu(II). Maximum TC degradation (about 94%) was obtained in the optimum concentration range of Cu(II) (0.05-0.15 mmol/L). In addition, there was a lag effect between TC adsorption and degradation on ZnO NPs. TC degradation was improved via Cu(II)-TC surface complexation and followed N-demethylation and hydroxylation routes. This study could be of potential importance in extrapolating the transformation of TC or other antibiotics under the coexistence of heavy metals in water.
机译:揭示Cu(ii)共存下四环素(Tc)光催化降解的特征,Cu(II)对ZnO纳米颗粒(ZnO NPS)的Tc光催化降解作为pH,腐殖酸(HA)和初始Cu的函数的影响(ii)研究浓度。通过圆形二色性(CD)光谱分析治疗过程中Tc与Cu(II)的相互作用,通过高效液相色谱 - 质谱法研究了TC降解途径。报道,在缺乏和存在Cu(II)的情况下60分钟内六十五百百分之九十六的TC降解。 Cu(II)下Tc的吸附和光催化降解随着pH从3至6的增加而增加,同时随着pH的进一步增加而降低。 HA抑制在不存在Cu(II)的情况下在不存在Cu(II)的情况下通过ZnO NP抑制TC的降解,而TC降解分别在存在和不存在Cu(II)的情况下从91〜73%下降至73%。通过增加Cu(II),ZnO NP的TC降解ZnO NPS首先增加。在Cu(II)的最佳浓度范围(0.05-0.15mmol / L)中获得最大Tc降解(约94%)。此外,在ZnO NPS上的TC吸附和降解之间存在滞后效果。通过Cu(II)-TC表面络合和洗涤N-去甲基化和羟基化途径,改善了TC降解。该研究可能具有推断在水中重金属的共存下TC或其他抗生素的转化的潜在重要性。

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