Susmitha Kumar, SK GHOSH, Maitrayee Biswas, Srabanti Ghosh, Rajendra Singh, Mrinal R. Pai, Ahmed M. Tawfeek, Sk. Manirul Islam, Mohammad Shahidul Islam, Mohammad Shahidul Islam
Imine-linked three-dimensional covalent organic frameworks (3D COFs) with donor–acceptor motifs are attractive photocatalysts but are often limited by narrow band gap tunability, inefficient charge separation, and few accessible active sites. Here, we report a 2D/3D heterostructure photocatalyst formed by in situ anchoring ultrathin SnS 2 nanosheets (∼10 nm) onto a robust 3D TT-COF via a scalable hydrothermal method. The resulting SnS 2 /TT-COF (TTSN-COF) exhibits exceptional activity for both visible-light-driven H 2 evolution and reduction of CO 2 to methanol. DFT calculations reveal a favorable hydrogen adsorption free energy (Δ G H* = −0.87 eV) together with enhanced CO 2 adsorption energy (Δ E ads = −73.6 kJ mol –1 ) for the SnS 2 /TT-COF heterojunction, indicating accelerated reaction kinetics driven by efficient interfacial charge transfer. Experimentally, TTSN-COF delivers a hydrogen evolution rate of 5500 μmol g –1 (8 h) and a methanol production rate of 1280 μmol g –1 in (6 h), far exceeding the performance of the individual components. The catalyst also demonstrates excellent durability, maintaining >85% of its initial activity after 20 h of continuous irradiation. These results establish the SnS 2 /TT-COF heterostructure as a benchmark platform for efficient solar-driven hydrogen generation and CO 2 valorization.