Investigating adsorption/photocatalysis of organic contaminants by Fe3O4–GO, Fe3O4–C3N4, and Fe3O4–GO-C3N4 heterojunctions

J.M.P. Silva , N.F. Andrade Neto , A.B. Lima , M. Correa , M.R.D. Bomio , F.V. Motta
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引用次数: 2

Abstract

Water pollution by contaminants such as dyes and drugs is a serious environmental problem. Currently, the objective is to develop materials that are effective in removing these contaminants. Graphene oxide (GO) and graphitic carbon nitride (g-C3N4) have been used as adsorbents for the efficient removal of organic pollutants and are useful to improve the photoactivity of iron oxide (Fe3O4). In this work, the Fe3O4, Fe3O4–C3N4, Fe3O4–GO, and Fe3O4–GO–C3N4 powders were structurally characterized by the X-ray diffraction technique and morphologically by the field emission scanning electron microscopy technique. Optical properties were studied using UV–visible spectroscopy and VSM analysis was performed to determine the remanence magnetization. The adsorption and photocatalysis were tested against methylene blue (MB), methyl orange (MO) and ketoprofen. XRD patterns for Fe3O4 and heterojunctions showed Fe3O4 formed as a single phase. As for morphological observation, Fe3O4 and g-C3N4 are formed by nanoparticles without defined morphology, while GO is formed by sheets. As for the VSM analysis, all samples show ferromagnetic behavior. The Fe3O4, Fe3O4–C3N4, Fe3O4–GO, and Fe3O4–GO–C3N4 samples have a bandgap of 2.07, 2.21, 2.14, and 2.19 ​eV, respectively. Therefore, all samples absorb visible radiation in waves greater than 560 ​nm. Heterojunctions containing g-C3N4 completely adsorb the MB and MO dyes, being necessary to extend the activity time when concentration increases or when the dyes are put together. Both Fe3O4 and Fe3O4–GO have photocatalytic properties toward MO dye. All materials studied in this manuscript have good adsorption and photocatalytic capacity against the anti-inflammatory drug ketoprofen.

研究Fe3O4-GO、Fe3O4-C3N4和Fe3O4-GO - c3n4异质结对有机污染物的吸附/光催化作用
染料和药物等污染物对水的污染是一个严重的环境问题。目前,目标是开发能够有效去除这些污染物的材料。氧化石墨烯(GO)和氮化石墨碳(g-C3N4)已被用作有效去除有机污染物的吸附剂,并有助于提高氧化铁(Fe3O4)的光活性。在本工作中,通过X射线衍射技术和场发射扫描电子显微镜技术对Fe3O4、Fe3O4–C3N4、Fe3O4–GO和Fe3O4-GO–C3N44粉末进行了结构表征。使用紫外-可见光谱研究了光学性能,并进行了VSM分析以确定剩磁磁化强度。对亚甲基蓝(MB)、甲基橙(MO)和酮洛芬进行了吸附和光催化实验。Fe3O4和异质结的XRD图谱显示Fe3O4形成为单相。在形态观察方面,Fe3O4和g-C3N4是由没有明确形态的纳米颗粒形成的,而GO是由片状形成的。至于VSM分析,所有样品都显示出铁磁行为。Fe3O4、Fe3O4–C3N4、Fe3O4–GO和Fe3O4-GO–C3N44样品的带隙分别为2.07、2.21、2.14和2.19​eV。因此,所有样品都吸收大于560的可见光辐射​nm。含有g-C3N4的异质结完全吸附MB和MO染料,当浓度增加或染料组合在一起时,这是延长活性时间所必需的。Fe3O4和Fe3O4–GO对MO染料都具有光催化性能。本文研究的所有材料对抗炎药酮洛芬都具有良好的吸附和光催化能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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