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用于高效光催化产过氧化氢的Z型CN/TiC/CdS的制备

fabrication of Z-scheme CN/TiC/CdS for efficient photocatalytic hydrogen peroxide production.

作者信息

Cao Jianrui, Zhou Suyu, Cai Junhao, Han Junhe, Liu Junhui, Li Ruoping, Huang Mingju

机构信息

International Joint Research Laboratory of New Energy Materials and Devices of Henan Province, Key Lab of Informational Opto-Electronical Materials and Apparatus, School of Physics and Electronics, Henan University, Kaifeng, 475004, China.

出版信息

Phys Chem Chem Phys. 2023 Sep 27;25(37):25734-25745. doi: 10.1039/d3cp01758c.

Abstract

Photocatalysis is a potential technology to produce hydrogen peroxide with low energy consumption and no pollution. However, when using traditional photocatalysts it is hard to meet the requirements of wide visible light absorption, high carrier separation rate and sufficient active sites. Graphitic carbon nitride (g-CN) has great potential in the photocatalytic production of hydrogen peroxide, but its photocatalytic performance is limited by a high carrier recombination ratio. Here, we fabricated the Z-Scheme heterojunction of CN/TiC/CdS . The large specific surface area of CN can provide plenty of reactive sites, and the absorption efficiency under visible light is improved with the addition of TiC and CdS. The better conductivity of TiC reduces the charge transfer resistance. With the increase of surface charge carriers, the width of the space charge region decreases and the photocurrent density increases significantly. Under visible light irradiation, the HO yield of the ternary photocatalyst reaches 256 μM L h, which is about 6 times that of pristine CN. After three cycles, the high photocatalytic efficiency can still be maintained. In this paper, the reaction mechanism of photocatalytic hydrogen peroxide production by the CN/TiC/CdS composite material is proposed through an in-depth study of energy band theory, which provides a new reference for the design and preparation of high-performance materials for photocatalytic hydrogen peroxide production.

摘要

光催化是一种具有低能耗、无污染特点的潜在产过氧化氢技术。然而,使用传统光催化剂时,难以满足宽可见光吸收、高载流子分离率和足够活性位点的要求。石墨相氮化碳(g-CN)在光催化产过氧化氢方面具有巨大潜力,但其光催化性能受高载流子复合率限制。在此,我们制备了CN/TiC/CdS的Z型异质结。CN的大比表面积可提供大量反应位点,添加TiC和CdS提高了可见光下的吸收效率。TiC较好的导电性降低了电荷转移电阻。随着表面电荷载流子增加,空间电荷区宽度减小,光电流密度显著增大。可见光照射下,三元光催化剂的HO产率达到256 μM L h,约为原始CN的6倍。经过三个循环后,仍可保持高光催化效率。本文通过对能带理论的深入研究,提出了CN/TiC/CdS复合材料光催化产过氧化氢的反应机理,为光催化产过氧化氢高性能材料的设计与制备提供了新的参考。

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