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增强结构匹配的CuInS/ZnInS异质结上可持续析氢的光催化活性

Enhancing Photocatalytic Activities for Sustainable Hydrogen Evolution on Structurally Matched CuInS/ZnInS Heterojunctions.

作者信息

Li Fuying, Liao Boiyee, Shen Jinni, Ke Junni, Zhang Rongxin, Wang Yueqi, Niu Yu

机构信息

School of Resources & Chemical Engineering, Sanming University, Sanming 365004, China.

Institute of Engineering and Technology Management, Krirk University, Bangkok 10220, Thailand.

出版信息

Molecules. 2024 May 23;29(11):2447. doi: 10.3390/molecules29112447.

Abstract

Effective charge separation and migration pose a critical challenge in the field of solar-driven hydrogen production. In this work, a Z-scheme structured CuInS/ZnInS heterojunction was successfully fabricated through a two-step hydrothermal synthesis method to significantly enhance the efficiency of solar-to-hydrogen energy conversion. Structural characterization revealed that the lattice-matched CuInS/ZnInS heterojunction exhibits an enlarged interfacial contact area, which facilitates the transfer and separation of photogenerated charges. Microscopic analysis indicated that the CuInS/ZnInS composite material has a tightly interwoven interface and a morphology resembling small sugar cubes. Photoelectrochemical spectroscopy analysis demonstrated that the heterojunction structure effectively enhances visible light absorption and charge separation efficiency, leading to an improvement in photocatalytic activity. Hydrogen production experimental data indicated that the CuInS/ZnInS heterojunction photocatalyst prepared with a CuInS content of 20 wt% exhibits the highest hydrogen evolution rate, reaching 284.9 μmol·g·h. Moreover, this photocatalyst maintains robust photocatalytic stability even after three consecutive usage cycles. This study demonstrated that the Z-scheme CuInS/ZnInS heterojunction photocatalyst exhibits enhanced hydrogen evolution efficiency, offering an effective structural design for harnessing solar energy to obtain hydrogen fuel. Therefore, this heterojunction photocatalyst is a promising candidate for practical applications in solar hydrogen production.

摘要

有效的电荷分离和迁移是太阳能驱动制氢领域面临的一项关键挑战。在这项工作中,通过两步水热合成法成功制备了一种Z型结构的CuInS/ZnInS异质结,以显著提高太阳能到氢能的转换效率。结构表征表明,晶格匹配的CuInS/ZnInS异质结具有增大的界面接触面积,这有利于光生电荷的转移和分离。微观分析表明,CuInS/ZnInS复合材料具有紧密交织的界面和类似小糖块的形态。光电化学光谱分析表明,异质结结构有效地增强了可见光吸收和电荷分离效率,从而提高了光催化活性。产氢实验数据表明,CuInS含量为20 wt%制备的CuInS/ZnInS异质结光催化剂具有最高的析氢速率,达到284.9 μmol·g·h。此外,即使经过三个连续的使用循环,这种光催化剂仍保持强大的光催化稳定性。这项研究表明,Z型CuInS/ZnInS异质结光催化剂具有提高的析氢效率,为利用太阳能获取氢燃料提供了一种有效的结构设计。因此,这种异质结光催化剂是太阳能制氢实际应用中很有前景的候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a194/11173830/ac2e0be38188/molecules-29-02447-g003.jpg

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