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石墨烯修饰的CdZnS纳米线用于高效光催化析氢

CdZnS Nanowire Decorated with Graphene for Efficient Photocatalytic Hydrogen Evolution.

作者信息

Wang Zemeng, Shen Yunsheng, Liu Qingsheng, Deng Tao, Lu Kangqiang, Hong Zhaoguo

机构信息

Jiangxi Provincial Key Laboratory of Functional Crystalline Materials Chemistry, School of Chemistry and Chemical Engineering, Jiangxi University of Science and Technology, Ganzhou 341000, China.

School of Pharmaceutical Sciences, Gannan Medical University, Ganzhou 341000, China.

出版信息

Molecules. 2025 Jul 20;30(14):3042. doi: 10.3390/molecules30143042.

Abstract

Harnessing abundant and renewable solar energy for photocatalytic hydrogen production is a highly promising approach to sustainable energy generation. To realize the practical implementation of such systems, the development of photocatalysts that simultaneously exhibit high activity, cost-effectiveness, and long-term stability is critically important. In this study, a CdZnS nanowire photocatalytic system decorated with graphene (GR) was prepared by a simple hydrothermal method. The introduction of graphene increased the reaction active area of CdZnS, promoted the separation of photogenerated charge carriers in the semiconductor, and improved the photocatalytic performance of the Cd.Zn.S semiconductor. The results showed that CdZnS loaded with 5% graphene exhibited the best photocatalytic activity, with a hydrogen production rate of 1063.4 µmol·g·h. Characterization data revealed that the graphene cocatalyst significantly enhances electron transfer kinetics in Cd.Zn.S, thereby improving the separation efficiency of photogenerated charge carriers. This study demonstrates a rational strategy for designing high-performance, low-cost composite photocatalysts using earth-abundant cocatalysts, advancing sustainable hydrogen production.

摘要

利用丰富且可再生的太阳能进行光催化制氢是实现可持续能源生产的一种极具前景的方法。为了实现此类系统的实际应用,开发同时具备高活性、成本效益和长期稳定性的光催化剂至关重要。在本研究中,通过一种简单的水热法制备了一种用石墨烯(GR)修饰的CdZnS纳米线光催化系统。石墨烯的引入增加了CdZnS的反应活性面积,促进了半导体中光生电荷载流子的分离,并提高了CdZnS半导体的光催化性能。结果表明,负载5%石墨烯的CdZnS表现出最佳的光催化活性,产氢速率为1063.4 µmol·g·h。表征数据显示,石墨烯助催化剂显著增强了CdZnS中的电子转移动力学,从而提高了光生电荷载流子的分离效率。本研究展示了一种利用地球上储量丰富的助催化剂设计高性能、低成本复合光催化剂的合理策略,推动了可持续制氢的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9847/12299082/cac6b6b190a4/molecules-30-03042-g001.jpg

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