Ping Zou , Zewen Wu , Shenggui Ma , Guangmei Cao , Xia Jiang , Hualin Wang
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引用次数: 0
Abstract
Visible light photocatalytic decomposition of water to form hydrogen provides a green and safe production method for clean energy, in which high activity and stability of heterocatalysts are high demand. In this paper, we report an inorganic anion regulation strategy to tune different exposed crystal planes of hexagonal ZnIn2S4, while modifying them with h-BN cocatalyst to form van der Waals heterojunction (vdWH) and reduce the photocorrosion, thereby boosting the photocatalytic hydrogen evolution activity. Consequently, ZnIn2S4(102)-20BN (ZIS-20BN) photocatalysts showed a remarkable photocatalytic H2 production performance of 3.61 mmol/gcat/h with a 10 W LED as the light source, 1.64 times higher than that of ZnIn2S4(102) (ZIS-(102)). Moreover, characterization and density functional theory calculations demonstrated that ZIS-(102) exhibited the lowest work function and the introduction of an appropriate amount of h-BN induced the formation of the van der Waals heterostructure, which are conducive to the improvement of the photocatalytic hydrogen evolution activity and stability. Therefore, this study provides a new feasible option for the rational design of heterojunction photocatalysts utilizing specific crystal planes and non-noble metal cocatalysts to achieve efficient photocatalytic production of hydrogen.
可见光光催化分解水生成氢气为清洁能源提供了一种绿色安全的生产方法,其中对活性高、稳定性好的异质催化剂有很高的要求。本文报道了一种无机阴离子调节策略,通过调整六方ZnIn2S4的不同暴露晶面,同时用h-BN助催化剂对其进行修饰,形成van der Waals异质结(vdWH),从而减少光腐蚀,从而提高光催化析氢活性。结果表明,ZnIn2S4(102)- 20bn (ZIS- 20bn)光催化剂在10 W LED光源下的光催化产氢性能为3.61 mmol/gcat/h,是ZnIn2S4(102) (ZIS-(102))的1.64倍。表征和密度泛函理论计算表明,ZIS-(102)的功函数最低,适量h-BN的引入诱导形成范德华异质结构,有利于提高光催化析氢活性和稳定性。因此,本研究为利用特定晶面和非贵金属助催化剂合理设计异质结光催化剂以实现高效光催化制氢提供了新的可行选择。
期刊介绍:
Applied Surface Science covers topics contributing to a better understanding of surfaces, interfaces, nanostructures and their applications. The journal is concerned with scientific research on the atomic and molecular level of material properties determined with specific surface analytical techniques and/or computational methods, as well as the processing of such structures.