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首页> 外文期刊>Applied Surface Science >Highly efficient photocatalytic performance and mechanism of α-ZnTcPc/g-C_3N_4 composites for methylene blue and tetracycline degradation under visible light irradiation
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Highly efficient photocatalytic performance and mechanism of α-ZnTcPc/g-C_3N_4 composites for methylene blue and tetracycline degradation under visible light irradiation

机译:α-ZnTcPc/ g-C_3N_4复合材料在可见光照射下对亚甲基蓝和四环素的高效光催化性能及其机理

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In this study, zinc (II) 1, 8(11), 15(18), 22(25)-tetrakis(4-carboxylphenoxy) phthalocyanine (alpha-ZnTcPc) was synthesized as sensitizer to construct a novel photocatalyst alpha-ZnTcPc/g-C3N4 by a polycondensation strategy. The FT-IR and XPS spectra demonstrated that the a-ZnTcPc molecules were covalently coupled on g-C3N4. The 10% alpha-ZnTcPc/g-C3N4 composites exhibit excellent extended spectral response with intense broad near-infrared absorption at 695 nm and with significantly fascinated charge carrier separation. As expected, the 10% alpha-ZnTcPc/g-C3N4 displayed a remarkable improved photocatalytic performance in decomposition of methylene blue (MB) and antibiotic tetracycline with degradation rates of 94.49% and 91.43% under visible light irradiation, respectively. The hydroxyl radicals (center dot OH) were observed as the main reactive oxidizing species in tetracycline decomposition. Moreover, the possible mechanism for enhanced visible light photocatalytic capability might be ascribed to the synergetic effect between alpha-ZnTcPc and g-C3N4, which creates large surface areas, decreases the recombination rate of photogenerated charge carries, as well as improves the visible light harvesting significantly. This work not only presents a practical method to conquer the drawback of pure g-C3N4, but also provides useful insights to construct other g-C3N4-based composites to take full advantage of solar light towards practical applications for eliminating recalcitrant organic pollutants.
机译:在这项研究中,合成了锌(II)1、8(11),15(18),22(25)-四(4-羧基苯氧基)酞菁(α-ZnTcPc)作为敏化剂,以构建新型光催化剂α-ZnTcPc/ g-C3N4通过缩聚策略。 FT-IR和XPS光谱表明,α-ZnTcPc分子在g-C3N4上共价偶联。 10%的α-ZnTcPc/ g-C3N4复合材料表现出出色的扩展光谱响应,在695 nm处具有很强的宽广的近红外吸收率,并且电荷载流子的分离显着迷人。不出所料,在可见光照射下,10%的α-ZnTcPc/ g-C3N4对亚甲基蓝(MB)和抗生素四环素的分解具有显着改善的光催化性能,降解率分别为94.49%和91.43%。观察到羟基自由基(中心点OH)是四环素分解中的主要反应性氧化物质。此外,增强可见光光催化能力的可能机制可能归因于α-ZnTcPc和g-C3N4之间的协同作用,这会产生较大的表面积,降低光生电荷携带的复合率,并改善可见光的捕获。显着。这项工作不仅为克服纯g-C3N4的缺点提供了一种实用的方法,而且为构建其他基于g-C3N4的复合材料提供了有用的见解,以充分利用太阳光将其用于消除顽固有机污染物的实际应用。

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