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首页> 外文期刊>Journal of Colloid and Interface Science >Nano-zinc oxide incorporated graphene oxide/nanocellulose composite for the adsorption and photo catalytic degradation of ciprofloxacin hydrochloride from aqueous solutions
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Nano-zinc oxide incorporated graphene oxide/nanocellulose composite for the adsorption and photo catalytic degradation of ciprofloxacin hydrochloride from aqueous solutions

机译:纳米氧化锌掺入石墨烯氧化物/纳米纤维素复合材料,用于来自水溶液的盐酸环氟氟氯嘧啶的吸附和光催化降解

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Purpose of this study is to report the synthetic procedure of a novel photo catalyst, nano zinc oxide incorporated graphene oxideinanocellulose (ZnO-GO/NC) for the effective adsorption and subsequent photo degradation of ciprofloxacin (CF), an antibiotic widely used in the poultry. Self cleaning property in cellulose was achieved by introducing a nano zinc oxide incorporated graphene oxide into nanocellulose (NC) matrix. By incorporating nano zinc oxide (ZnO) in graphene oxide (GO), band gap could be tuned to 2.4 eV and after the composite formation with NC, the band gap was enhanced to 2.8 eV which is in the visible region. Thus the degradation of the CF was achieved under the visible light Photo degradation was due to electron hole interaction. The step wise modification in the synthesis ZnO-GO/NC was characterized using FT-IR, XRD, SEM, EDS, AFM, DRS-UV and BET N-2 adsorption isotherm techniques. The values of surface area, pore volume and pore radius were found to be 12.68 m(2)/g, 0.026 mL/g and 12.5 nm, respectively. Efficiency in the adsorption process of CF onto ZnO-GO/NC was verified by batch adsorption technique. The optimum pH was found to be 5.5 and dose of the ZnO-GO/NC was optimized as 2.0 g/L. Equilibrium was attained at 120 min and the adsorption of drug followed second-order kinetics. Sips isotherm was the best fitted model and could explain the nature of interaction of CF with ZnO-GO/NC. The studies revealed that the degradation followed first-order kinetics and the optimum pH for the degradation process was found to be 6.0 and achieved a maximum degradation efficiency of 98.0%. The reusability of ZnO-GO/NC after five consecutive cycles indicated it to be a potential candidate for the removal and degradation of CF from aquatic environment. (C) 2016 Elsevier Inc. All rights reserved.
机译:本研究的目的是报告新型光催化剂的合成方法,纳米氧化锌掺入石墨烯纤维素(ZnO-Go / NC),用于有效的吸附和随后的CiProfloxacin(CF)的光降解,广泛用于家禽中的抗生素。通过将纳米氧化锌掺入的石墨烯(NC)基质引入纳米氧化锌(NC)基质来实现纤维素中的自清洁性质。通过将纳米氧化锌(ZnO)掺入石墨烯氧化物(GO)中,可以将带隙调谐至2.4eV,并且在用NC复合形成之后,带隙增强至在可见区域中的2.8eV。因此,在可见光的光降解下实现了CF的降解是由于电子空穴相互作用。合成ZnO-Go / NC中的步骤明智的修改使用FT-IR,XRD,SEM,EDS,AFM,DRS-UV和BET N-2吸附等温技术。发现表面积,孔体积和孔半径的值分别为12.68m(2)/ g,0.026ml / g和12.5nm。通过批量吸附技术验证CF在ZnO-Go / NC上的吸附过程中的效率。发现最佳pH为5.5,ZnO-Go / NC的剂量优化为2.0g / L.在120分钟的120分钟获得平衡,吸附药物遵循二阶动力学。 SIPS等温线是最适合的型号,可以解释CF与ZnO-Go / NC相互作用的性质。研究表明,脱脂后的一流动力学和降解过程的最佳pH值为6.0,实现了98.0%的最大降解效率。连续五个循环后ZnO-Go / NC的可重用性表明它是从水生环境中去除和降解CF的潜在候选者。 (c)2016 Elsevier Inc.保留所有权利。

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