Construction of isotype heterojunctions in polymeric carbon nitride with thermal modulation and improved photocatalytic hydrogen production activity

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作者
Khan, Muhammad Abdullah [1 ]
Rameel, Muhammad Imran [1 ]
Salam, Fariah [1 ]
Al-Humaidi, Jehan Y. [2 ]
Jaffari, G. Hassnain [3 ]
Aldawsari, Afrah Mohammed [4 ,5 ]
机构
[1] Renewable Energy Advancement Laboratory (REAL), Department of Environmental Sciences, Quaid-i-Azam University Islamabad, Pakistan
[2] Department of Chemistry College of Science Princess Nourah bint Abdulrahman University, P. O. BOX 84428, Riyadh,11671, Saudi Arabia
[3] Department of Physics, Quaid-i-Azam University, Islamabad, Pakistan
[4] Chemistry Department, Faculty of Applied Science, Umm Al Qura University, Makkah, Saudi Arabia
[5] Petrochemical Research Institute, King Abdulaziz City for Science and Technology, P. O. Box 6086, Riyadh,11442, Saudi Arabia
关键词
Dicyandiamide - Interconnected structures - Isotype heterojunctions - Photocatalytic activities - Photocatalytic hydrogen production - Production activity - Single precursors - Structural defect - Thermal condensation - Thermal modulation;
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摘要
Subtle structural changes in polymeric carbon nitrides (PCN) influence their photocatalytic activities. Herein, we present a strategy to construct isotype heterojunctions by thermal condensation of dicyandiamide as a single precursor. This avoids the complications that differences in the electronegativity of the coupled materials incur. Heterojunctions were created by depositing a carbon nitride layer processed at 500 °C over the carbon nitride processed at 600 °C utilizing structural defects and uncondensed moieties to form an interconnected structure. This enables the directional stacking of the PCN layers leading to changes in physicochemical properties and electronic band structure. The detailed characterization and testing revealed a type-II heterojunction configuration, whereby photoluminescence quenching measurements confirm longer exciton lifetimes and differences in Mott-Schottky flat band potential energies and low interfacial resistance facilitate mobility of charge carriers. Heterojunction materials exhibit high photocurrent generation and H2 production with visible light, and AQY surpasses 5%. Overall, efficient charge separation owing to the intrinsic electric field of closely related band offsets at the interface of the heterojunction materials enhances the photocatalytic response. The work highlights the importance of fine structural changes in improving the activity of polymeric photocatalytic systems. © 2024 Elsevier B.V.
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