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Heterocyclic spacer engineering in heteroporous covalent triazine frameworks for tunable hydrogen photocatalysis
期刊文章

Heterocyclic spacer engineering in heteroporous covalent triazine frameworks for tunable hydrogen photocatalysis

C.-L. Yang, A.M. Elewa, W.-H. Sun, G.-L. Li, A.E. Hassan, C.-H. Lai, H.-H. Chou 和 A.F.M. EL-Mahdy
Materials Today Energy, 卷.54
2025
Web of Science ID: WOS:001634589500001

摘要

Covalent triazine frameworks Hydrogen evolution Photocatalysis Porous polymers Sulfur/nitrogen heterocycles Visible light Ascorbic acid Chemical stability Complexation Design for testability Heterojunctions Hydrogen production Light absorption Photocatalysts Photocatalytic activity Sulfur Synthesis (chemical) 5]thiadiazole Covalent triazine framework Hydrogen-evolution Nitrogen heterocycles Organics Porous polymers Sulphur/nitrogen heterocycle Terthiophenes Tunables Visible light Electronic structure Energy gap
The rational design of porous organic photocatalysts with high stability, visible-light absorption, and efficient charge separation is critical for advancing solar hydrogen production. In this work, we report the synthesis of a series of heteroporous covalent triazine frameworks (CTFs) incorporating nitrogen- and/or sulfur-rich heterocycles—thiazolothiazole (TZ), terthiophene (TT), benzo[c][1,2,5]thiadiazole (DPBT), and thiophene-substituted benzo[c][1,2,5]thiadiazole (DTBT)—through a mild polycondensation route using terephthalamidine and corresponding dialdehydes. These CTFs exhibit dual micro/mesoporosity, high thermal and chemical stability, and tunable electronic structures with band gaps ranging from 1.97 to 2.96 eV. Systematic evaluation revealed that TT-CTF delivered a high photocatalytic hydrogen evolution rate of 41,563 μmol g−1 h−1 under visible light (λ > 420 nm) with ascorbic acid as a sacrificial electron donor, far surpassing its analogues. This superior activity is attributed to its optimized electronic structure, high charge mobility, enhanced light harvesting, and reduced recombination, as supported by photoluminescence quenching, transient photocurrent response, impedance spectroscopy, and DFT calculations. This study highlights the pivotal role of heteroatom-rich linkers and heterojunction engineering in constructing next-generation organic photocatalysts for sustainable hydrogen production. © 2025 Elsevier Ltd.

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https://www.scopus.com/inward/record.uri?eid=2-s2.0-105024189918&doi=10.1016%2fj.mtener.2025.102141&partnerID=40&md5=ce260055697252aac149eee4fc7b9547檢視

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合作類型
機構合作
國際合作
引用書目主題
2 Chemistry
2.22 Inorganic & Nuclear Chemistry
2.22.336 Metal-Organic Frameworks
Web Of Science研究領域
Chemistry, Physical
Energy & Fuels
Materials Science, Multidisciplinary
ESI研究領域
Materials Science

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