中空 CoSx 多面体修饰的 Z 型 B-g-C3N4/MoO3 用于降解混合污染物

IF 4.3 3区 材料科学 Q2 MATERIALS SCIENCE, COATINGS & FILMS
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引用次数: 0

摘要

染料废水中存在多种染料分子,混合染料的降解处理更具实用性。本研究以 ZIF-67 为牺牲模板,制备中空 CoSx 多面体作为助催化剂,对掺杂 B 的 g-C3N4/MoO3 (BCM)光催化剂进行改性和改进,以高效降解 MO + MB + RhB 混合染料(MO 和 MB 的浓度均为 10 mg/L,RhB 的浓度为 20 mg/L)。在功率为 300 W 的模拟光源下,对催化剂含量为 20 mg 的混合污染物(100 mL)进行催化性能评估时,BCM 与 ZIF-67 的质量比为 60:1 的光催化剂(CBCM-60)的降解性能最佳。它在 20 分钟内完全降解了 MO,在 200 分钟内分别降解了 87% 的 MB 和 37% 的 RhB。与此形成鲜明对比的是,未经 CoSx 改性的 BCM 完全降解 MO 的时间延长至 40 分钟,在 200 分钟内只能降解 62% 的 MB 和 17% 的 RhB。CBCM 催化性能的提高与 CoSx 多面体的空腔结构密切相关。首先,空腔结构可以捕捉入射光并进行多次反射/散射,从而显著提高光的吸收率。其次,CoSx 的改性增加了材料的比表面积,克服了掺杂 B 导致 BCM 比表面积减少的不足。最后,CoSx 可作为电子传输的 "高速通道",在 Z 型异质结的基础上进一步提高载流子分离效率。因此,中空 CoSx 多面体修饰 B 掺杂 g-C3N4/MoO3 光催化剂有望适用于实际工业废水的净化,这对于研究如何在光催化中去除具有两种或三种不同分子结构的混合污染物也具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Z-scheme B-g-C3N4/MoO3 modified by hollow CoSx polyhedral for degradation of mixed pollutants

Z-scheme B-g-C3N4/MoO3 modified by hollow CoSx polyhedral for degradation of mixed pollutants

There are various dye molecules in dye wastewater, making the degradation treatment of mixed dyes more practical. This work used ZIF-67 as a sacrificial template to prepare hollow CoSx polyhedral as a co-catalyst to modify and improve B-doped g-C3N4/MoO3 (BCM) photocatalysts for efficient degradation of MO + MB + RhB mixed dyes (the concentrations of MO and MB were both 10 mg/L and RhB was 20 mg/L). In the evaluation of the catalytic performance of mixed pollutants (100 mL) with a catalyst content of 20 mg under a simulated light source with a power of 300 W, the best degradation performance was achieved by a photocatalyst (CBCM-60) with a mass ratio of BCM to ZIF-67 of 60:1. It completely degraded MO within 20 min and degraded 87 % MB and 37 % RhB, respectively, within 200 min. In sharp contrast, the time for complete degradation of MO by BCM without CoSx modification was extended to 40 min, and at 200 min, only 62 % of MB and 17 % of RhB could be degraded. The enhancement of the catalytic performance of CBCM is closely related to the hollow structure of CoSx polyhedral. Firstly, the cavity structure captures incident light and undergoes multiple reflections/scattering, significantly enhancing light absorption. Secondly, the modification of CoSx increased the specific surface area of the material, overcoming the insufficient reduction in BCM specific surface area caused by B doping. Finally, CoSx can serve as a “high-speed channel” for electron transfer, further improving the carrier separation efficiency on the basis of Z-type heterojunctions. Therefore, the hollow CoSx polyhedral modified B-doped g-C3N4/MoO3 photocatalyst is expected to be suitable for practical industrial wastewater purification, which is also of great significance for studying how to remove mixed pollutants with two or three different molecular structures in photocatalysis.

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来源期刊
Diamond and Related Materials
Diamond and Related Materials 工程技术-材料科学:综合
CiteScore
6.00
自引率
14.60%
发文量
702
审稿时长
2.1 months
期刊介绍: DRM is a leading international journal that publishes new fundamental and applied research on all forms of diamond, the integration of diamond with other advanced materials and development of technologies exploiting diamond. The synthesis, characterization and processing of single crystal diamond, polycrystalline films, nanodiamond powders and heterostructures with other advanced materials are encouraged topics for technical and review articles. In addition to diamond, the journal publishes manuscripts on the synthesis, characterization and application of other related materials including diamond-like carbons, carbon nanotubes, graphene, and boron and carbon nitrides. Articles are sought on the chemical functionalization of diamond and related materials as well as their use in electrochemistry, energy storage and conversion, chemical and biological sensing, imaging, thermal management, photonic and quantum applications, electron emission and electronic devices. The International Conference on Diamond and Carbon Materials has evolved into the largest and most well attended forum in the field of diamond, providing a forum to showcase the latest results in the science and technology of diamond and other carbon materials such as carbon nanotubes, graphene, and diamond-like carbon. Run annually in association with Diamond and Related Materials the conference provides junior and established researchers the opportunity to exchange the latest results ranging from fundamental physical and chemical concepts to applied research focusing on the next generation carbon-based devices.
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