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首页> 外文期刊>Environmental Science and Pollution Research >Sonochemical synthesis of graphitic carbon nitride-manganese oxide interfaces for enhanced photocatalytic degradation of tetracycline hydrochloride
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Sonochemical synthesis of graphitic carbon nitride-manganese oxide interfaces for enhanced photocatalytic degradation of tetracycline hydrochloride

机译:石化合成石墨氮化物 - 氧化锰界面,用于增强盐酸四环素的光催化降解

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摘要

The present study focuses on the sonochemical synthesis of graphitic carbon nitride-manganese oxide (GCN/MnO2) nanocomposite for photocatalytic degradation of an environmentally hazardous pharmaceutical compound, tetracycline hydrochloride (TcH). The sonochemical synthesis aided in tailoring the morphology of GCN/MnO2. The characterization results of SEM/FESEM, XRD, FTIR, UV-Vis spectra, EIS, CV, etc., revealed on the morphology, composition, crystallinity, and other photo-electro-intrinsic properties of the materials. The synergy of GCN and MnO(2)results in rapid electron transfer, efficient visible-light absorption, and slower electron-hole pair recombination through its photo-responsive traits against TcH. It was noted that similar to 93% TcH (20 mg L-1) degradation was achieved for 30-mg catalyst dose under light-emitting diode (LED) irradiation (9 W, 220 V) in 135-min duration. The TcH mineralization results were well fit to pseudo-first-order kinetics with a rate constant of 0.02 min(-1)(R-2= 0.994). In addition, the composite possessed fair reusability for consequent cycles. Hence, the as-synthesized composite applied for photocatalysis and photoelectrocatalysis fosters a fit-for-purpose and reliable system in the decontamination of TcH in environmental samples.
机译:本研究的重点是声化学合成石墨碳氮锰氧化物(GCN/MnO2)纳米复合材料,用于光催化降解环境有害的药物化合物盐酸四环素(TcH)。声化学合成有助于调整GCN/MnO2的形态。SEM/FESEM、XRD、FTIR、UV-Vis光谱、EIS、CV等表征结果揭示了材料的形貌、组成、结晶度等光电本征性质。GCN和MnO(2)的协同作用通过其对TcH的光响应特性,导致快速的电子转移、有效的可见光吸收和较慢的电子-空穴对复合。值得注意的是,在发光二极管(LED)照射(9 W,220 V)下,在135 min的时间内,30 mg催化剂剂量下,TcH(20 mg L-1)的降解率与93%的降解率相似。TcH矿化结果很好地符合伪一级动力学,速率常数为0.02 min(-1)(R-2=0.994)。此外,复合材料对后续循环具有良好的可重用性。因此,用于光催化和光电催化的合成复合材料为环境样品中TcH的去污提供了一个适用且可靠的系统。

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