Please use this identifier to cite or link to this item: http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/11320
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dc.contributor.authorMAITY, SUDIPen_US
dc.contributor.authorDAM, GOURAB K.en_US
dc.contributor.authorRASAILY, SAGARMANIen_US
dc.contributor.authorParmar, Saurabh Vinoden_US
dc.contributor.authorROY, ANIRBANen_US
dc.contributor.authorAvasare, Vidyaen_US
dc.contributor.authorGHOSH, SUJIT K.en_US
dc.date.accessioned2026-06-23T11:31:11Z-
dc.date.available2026-06-23T11:31:11Z-
dc.date.issued2026-06en_US
dc.identifier.citationMaterials Horizonsen_US
dc.identifier.issn2051-6355en_US
dc.identifier.urihttps://doi.org/10.1039/D6MH00687Fen_US
dc.identifier.urihttp://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/11320-
dc.description.abstractThe strategic development of metal-free photocatalysts with efficient charge-carrier separation and transfer is crucial for high-performance solar-energy conversion. In this regard, covalent-organic frameworks (COFs) have emerged as promising candidates; however, achieving precise, rational control over excitonic separation remains a challenge often limited to incremental material optimization. To address this, we report a structurally distinct design strategy, achieved via a unified “Threefold-Approach” that systematically regulates the density and positional distribution of N heteroatoms across a series of imine-linked COFs. This precise regulation strategy systematically enhances the intramolecular polarity and strengthens donor–acceptor (D–A) interaction, fundamentally advancing beyond conventional donor–acceptor optimisation by establishing a clear correlation between heteroatom positioning and charge-carrier dynamics. To validate the influence of this design strategy on photoefficiency, we conducted photocatalytic H2O2 synthesis, given its growing significance for zero-carbon electricity generation in one-component fuel cells. Among the synthesised materials, one of the COFs (COF-C) featuring a strong intramolecular D–A system, maximises free charge generation and achieves an unprecedented H2O2 production rate of 9183 µmol h−1 g−1, along with a solar-to-chemical conversion efficiency of 1.3% in an oxygen-saturated aqueous system, without the use of any sacrificial agent. Furthermore, the practical efficacy of sunlight-driven, bulk-scale synthesised H2O2 was validated through advanced oxidation experiments, including the detoxification of a mustard-gas simulant. Overall, this study establishes a definitive architectural blueprint for the rational design of heteroatom-regulated COF photocatalysts, providing a new pathway toward highly efficient solar-driven synthesis and utilisation of value-added chemicals.en_US
dc.language.isoenen_US
dc.publisherRoyal Society of Chemistryen_US
dc.subjectChemistryen_US
dc.subject2026-JUN-WEEK4en_US
dc.subjectTOC-JUN-2026en_US
dc.subject2026en_US
dc.titleA threefold approach to boost photo-harvesting efficiency in covalent organic frameworks via strategic N-centre regulationen_US
dc.typeArticleen_US
dc.contributor.departmentDept. of Chemistryen_US
dc.identifier.sourcetitleMaterials Horizonsen_US
dc.publication.originofpublisherForeignen_US
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