Interlayer Potassium Single-Atom-Coordinated g-C3N4 for Significantly Boosted Visible Light Photocatalytic H2 Production

石墨氮化碳 介孔材料 光催化 材料科学 可见光谱 带隙 吸收(声学) 比表面积 插层(化学) 兴奋剂 碳纤维 共价键 化学工程 纳米技术 催化作用 无机化学 化学 光电子学 有机化学 复合数 冶金 复合材料 工程类
作者
Xiao‐Jie Lu,Cheng‐Zong Yuan,Shuai Chen,Jing‐Han Li,Ikram Ullah,Ming Qi,An‐Wu Xu
出处
期刊:Langmuir [American Chemical Society]
卷期号:40 (21): 11067-11077 被引量:29
标识
DOI:10.1021/acs.langmuir.4c00605
摘要

In recent years, graphitic carbon nitride (g-C 3 N 4 ) has attracted considerable attention because it includes earth-abundant carbon and nitrogen elements and exhibits good chemical and thermal stability owing to the strong covalent interaction in its conjugated layer structure. However, bulk g-C 3 N 4 has some disadvantages of low specific surface area, poor light absorption, rapid recombination of photogenerated charge carriers, and insufficient active sites, which hinder its practical applications. In this study, we design and synthesize potassium single-atom (K SAs)-doped g-C 3 N 4 porous nanosheets (CM-K X, where X represents the mass of KHP added) via supramolecular self-assembling and chemical cross-linking copolymerization strategies. The results show that the utilization of supramolecules as precursors can produce g-C 3 N 4 nanosheets with reduced thickness, increased surface area, and abundant mesopores. In addition, the intercalation of K atoms within the g-C 3 N 4 nitrogen pots through the formation of K–N bonds results in the reduction of the band gap and expansion of the visible-light absorption range. The optimized K-doped CM-K 12 nanosheets achieve a specific surface area of 127 m 2 g –1, which is 11.4 times larger than that of the pristine g-C 3 N 4 nanosheets. Furthermore, the optimal CM-K 12 sample exhibits the maximum H 2 production rate of 127.78 μmol h –1 under visible light (λ ≥ 420 nm), which is nearly 23 times higher than that of bare g-C 3 N 4 . This significant improvement of photocatalytic activity is attributed to the synergistic effects of the mesoporous structure and K SAs doping, which effectively increase the specific surface area, improve the visible-light absorption capacity, and facilitate the separation and transfer of photogenerated electron–hole pairs. Besides, the optimal sample shows good chemical stability for 20 h in the recycling experiments. Density functional theory calculations confirm that the introduction of K SAs significantly boosts the adsorption energy for water and decreases the activation energy barrier for the reduction of water to hydrogen.
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