光催化
石墨氮化碳
分解水
X射线光电子能谱
可见光谱
材料科学
异质结
氮化碳
工作职能
表面光电压
光化学
化学
纳米技术
光谱学
化学工程
催化作用
工程类
光电子学
量子力学
图层(电子)
物理
生物化学
作者
Devipriya Gogoi,Adit Kumar Shah,Mohammad Qureshi,Animes Kumar Golder,Nageswara Rao Peela
标识
DOI:10.1016/j.apsusc.2021.149900
摘要
• Ag/gC 3 N 4 (U)/gC 3 N 4 (T) photocatalyst is successfully synthesized for the first time. • Ag/gC 3 N 4 (U)/gC 3 N 4 (T) forms S-scheme heterojunction and boosts H 2 production. • Existence of N-vacancies improve carrier charge separation and transportation. • The highest H 2 evolution rate over Ag/gC 3 N 4 (U)/gC 3 N 4 (T) was 10.1 mmol g −1 h −1 . • Ag/gC 3 N 4 (U)/gC 3 N 4 (T) exhibited excellent reusability and chemical stability. The efficient and visible-light-active graphitic carbon nitride (gC 3 N 4 ) has attracted attention for green H 2 production from solar energy through water splitting. However, the photocatalyst suffers faster recombination of photogenerated electron-hole pairs and a low visible light absorption efficiency. In this work, the ternary Ag-grafted gC 3 N 4 -gC 3 N 4 heterostructures were synthesized using thermal polycondensation of urea and thiourea, followed by photo-deposition of the silver from silver nitrate. The formation of S-scheme heterojunction was confirmed through XRD, VB XPS, UV–Vis, Mott-Schottky, EPR and PL analyses. The X-ray photoelectron spectroscopy revealed the presence of nitrogen vacancies with Ag grafting. The H 2 production rate was the highest at 10.1 mmol g −1 h −1 with 2.5Ag/gC 3 N 4 -gC 3 N 4 , which was 3 and 8 times higher than that over gC 3 N 4 -gC 3 N 4 and gC 3 N 4 , respectively. The addition of Ag mainly contributed to enhance the photocatalytic activity of the heterojunction due to its dual-function. Firstly, silver is attributed to enhance the localized surface plasmon resonance, which broadened the visible light absorption and secondly, the abundant electron capture due to the high Schottky barrier. Moreover, the existence of nitrogen vacancies further improved the separation of charge carriers and helped in carrier transportation. This work provides a new S-scheme heterostructure strategy for the sustainable utilization of solar radiation in the production of H 2 from water splitting at higher rates.
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