DOI: 10.1021/acsaenm.6c00868 ISSN: 2771-9545

Rational Design of Star-Shaped Donor−Acceptor Organic Small-Molecule/GCN Heterostructures for Superior Photocatalytic Hydrogen Evolution and Photoelectrocatalytic Water Splitting Applications

Govindasamy Sathiyan, Gayathri Kumaresan, Geetha Venkatesan, Sebin Devasia, Pachagounder Sakthivel, Nisha Banerjee, Ranjith G. Nair, Abinash Das

Abstract

Graphitic carbon nitride (GCN) is a preferred metal-free, sustainable photocatalyst for solar hydrogen production; however, its efficiency is severely limited by rapid charge carrier recombination and poor electronic transport properties. To overcome these limitations, this study describes the design and synthesis of two donor−acceptor (D−A)-conjugated small molecules (TRZH and TRZBR) that have been heterojunctioned with GCN. The heterojunction was fabricated by integrating these organic small molecules (OSMs) with GCN (g-C3N4) through a facile sonication-assisted method, facilitating the formation of OSM/GCN heterostructures via non-covalent π−π interactions. These organic small molecules (OSMs) have a triazine central core with extended π-conjugation to carbazole via olefin double bonds and distinct hexyl and 2-ethylhexyl chains on the carbazole N-position, resulting in enhanced solubility and π−π stacking interactions. In contrast to the linear hexyl chains in TRZH, the branched 2-ethylhexyl chains in TRZBR significantly improve interfacial contact and decrease self-aggregation, resulting in more efficient interaction with the GCN surface and accessible active sites. Under visible-light irradiation, the GCN/TRZBR heterojunction exhibited a superior hydrogen evolution rate of 780 μmol g−1 h−1, while GCN/TRZH achieved 570 μmol g−1 h−1, both significantly outperforming pristine GCN (250 μmol g−1 h−1). This enhanced performance is attributed to the synergistic effect of broadened visible light absorption and accelerated interfacial charge transfer across the D−A heterojunction that effectively suppresses exciton recombination and boosts photocatalytic activity.

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