Edge-Rich 3D Structuring of Metal Chalcogenide/Graphene with Vertical Nanosheets for Efficient Photocatalytic Hydrogen Production

光催化 石墨烯 材料科学 硫系化合物 制氢 结构化 GSM演进的增强数据速率 金属 纳米技术 化学工程 冶金 催化作用 业务 化学 有机化学 电信 工程类 计算机科学 财务
作者
Dong‐Bum Seo,Yeong Min Kwon,Jin Kim,Saewon Kang,Soonmin Yim‬,Sun Sook Lee,Eui‐Tae Kim,Wooseok Song,Ki‐Seok An
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:16 (22): 28613-28624 被引量:13
标识
DOI:10.1021/acsami.4c04329
摘要

Constructing pertinent nanoarchitecture with abundant exposed active sites is a valid strategy for boosting photocatalytic hydrogen generation. However, the controllable approach of an ideal architecture comprising vertically standing transition metal chalcogenides (TMDs) nanosheets on a 3D graphene network remains challenging despite the potential for efficient photocatalytic hydrogen production. In this study, we fabricated edge-rich 3D structuring photocatalysts involving vertically grown TMDs nanosheets on a 3D porous graphene framework (referred to as 3D Gr). 2D TMDs (MoS2 and WS2)/3D Gr heterostructures were produced by location-specific photon-pen writing and metal–organic chemical vapor deposition for maximum edge site exposure enabling efficient photocatalytic reactivity. Vertically aligned 2D Mo(W)S2/3D Gr heterostructures exhibited distinctly boosted hydrogen production because of the 3D Gr caused by synergetic impacts associated with the large specific surface area and improved density of exposed active sites in vertically standing Mo(W)S2. The heterostructure involving graphene and TMDs corroborates an optimum charge transport pathway to rapidly separate the photogenerated electron–hole pairs, allowing more electrons to contribute to the photocatalytic hydrogen generation reaction. Consequently, the size-tailored heterostructure showed a superior hydrogen generation rate of 6.51 mmol g–1 h–1 for MoS2/3D graphene and 7.26 mmol g–1 h–1 for WS2/3D graphene, respectively, which were 3.59 and 3.76 times greater than that of MoS2 and WS2 samples. This study offers a promising path for the potential of 3D structuring of vertical TMDs/graphene heterostructure with edge-rich nanosheets for photocatalytic applications.
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