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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Photoregenerable, Bifunctional Granules of Carbon-Doped g-C3N4 as Adsorptive Photocatalyst for the Efficient Removal of Tetracycline Antibiotic
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Photoregenerable, Bifunctional Granules of Carbon-Doped g-C3N4 as Adsorptive Photocatalyst for the Efficient Removal of Tetracycline Antibiotic

机译:碳掺杂G-C 3 n 4 作为吸附光催化剂,以有效去除四环素抗生素的吸附光催化剂

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Environmental remediation employing semiconducting materials offer a greener solution for pollution control. Herein, we report the development of high surface area porous architecture of C3N4 nanosheets by a simple aqueous spray drying process. g-C3N4 nanosheets obtained by the thermal decomposition of urea-thiourea mixture are spray granulated to microspheres using 2 wt% poly vinyl alcohol (PVA) as binder. The post granulation thermal oxidation treatment resulted in in situ doping of carbon leading to improved photophysical properties compared to pristine g-C3N4. The C3N4 granules with surface area values of 150 m2/g rendered repetitive adsorption of tetracycline antibiotic (~75% in 60 min) and the extended absorption in the visible region facilitated complete photocatalytic degradation upon sunlight irradiation (>95% in 90 min). The delocalized π bonds generated after carbon doping and the macro-meso porous architecture created by the granulation process aided high adsorption capacity (70 mg/g). The photoregenerable, bifunctional materials herein obtained can thus be employed for the adsorption and subsequent degradation of harmful organic pollutants without any secondary remediation processes.]]>
机译:<!图像/中/ SC-2016-02383E_0015.GIF“>使用半导体材料的环境修复为污染控制提供更环保的解决方案。在此,我们通过简单的水性喷雾干燥过程报告了C 3 n 4 纳米片的高表面积多孔结构的发展。通过尿素 - 硫脲混合物的热分解获得的G-C <亚> 3 N 4 N anosheS通过作为粘合剂的2wt%聚乙烯醇(PVA)喷雾到微球上。后造粒热氧化处理导致碳的原位掺杂导致与原始G-C 3 N 4 相比改善了光学性质。 C 3 n 4 颗粒,表面积为150m 2 / g,使得重复吸附四环素抗生素(60分钟内〜75% )和可见区域中的延伸吸收促进了在阳光照射时完全光催化降解(> 90分钟)。在碳掺杂和由造粒过程产生的宏观 - 中间多孔建筑之后产生的分层π键合辅助高吸附容量(70mg / g)。因此,可以使用本文获得的光难量,除了任何次级修复过程的有害有机污染物的吸附和随后降解。]>

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