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O 掺杂 g-CN/WO 纳米片增强氧化还原能力在不同溶解氧浓度下光催化降解四环素。

Enhancement of redox capacity derived from O-doping of g-CN/WO nanosheets for the photocatalytic degradation of tetracycline under different dissolved oxygen concentration.

机构信息

College of Chemical Engineering, Huaqiao University, Xiamen, 361021, China.

出版信息

Dalton Trans. 2022 Jan 17;51(3):1086-1098. doi: 10.1039/d1dt03185f.

Abstract

Element doping is an essential method for adjusting band structure, light absorbance and charge transfer, and separation of semiconductors. Besides this, whether the photocatalyst can function in an oxygen-deficient environment is also important. Herein, a novel Z-scheme heterojunction photocatalyst O-doped g-CN/WO (OCN/W) was fabricated and used for the photocatalytic degradation of tetracycline (TC) at different dissolved oxygen concentrations. The introduction of O atoms into g-CN hydrothermal treatment manipulates the band structure of the material by increasing the conduction band potential, thus producing more ˙O. The TC removal rate of OCN/W-2.0 is 89.8% within 60 min under visible light irradiation, which is 1.77 times higher than that of porous g-CN nanosheets (PCN). Furthermore, the photocatalytic performance of OCN/W-2.0 also reaches 75% even under oxygen-deficient conditions. The effects of different anions and humic acid in the reaction system can be neglected. The enhanced performance can be attributed to the improved charge separation and the outstanding optical properties of the Z-scheme heterojunction. A possible mechanism was postulated, in which ˙O and h are the main reactive species in TC degradation. The OCN/W-2.0 shows a stable structure and outstanding reusability. This work provides insight into antibiotics removal under different dissolved oxygen conditions and the design of photocatalysts for practical applications.

摘要

元素掺杂是调整半导体的能带结构、光吸收和电荷转移与分离的一种重要方法。此外,光催化剂是否能在缺氧环境下工作也很重要。本文制备了一种新型的 Z 型异质结光催化剂 O 掺杂 g-CN/WO(OCN/W),并用于在不同溶解氧浓度下光催化降解四环素(TC)。将 O 原子引入 g-CN 的水热处理通过增加导带势来操纵材料的能带结构,从而产生更多的˙O。在可见光照射下,OCN/W-2.0 在 60 分钟内的 TC 去除率为 89.8%,是多孔 g-CN 纳米片(PCN)的 1.77 倍。此外,即使在缺氧条件下,OCN/W-2.0 的光催化性能也达到了 75%。反应体系中不同阴离子和腐殖酸的影响可以忽略不计。性能的提高归因于电荷分离的改善和 Z 型异质结的出色光学性质。提出了一种可能的机制,其中˙O 和 h 是 TC 降解的主要活性物质。OCN/W-2.0 表现出稳定的结构和出色的可重复使用性。这项工作为不同溶解氧条件下抗生素的去除以及实际应用中光催化剂的设计提供了思路。

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