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Visible light-driven photocatalytic reduction of CO to value-added fuels and chemicals has attracted extensive interest for decades. However, the emerging photocatalysis paradigm through an interband transition in non-plasmonic metals remains challenging. Herein, a new strategy, namely hot carrier exploitation is demonstrated, for highly efficient CO reduction through the interband transition in non-plasmonic Ru nanoparticles (NPs). The Ru NPs are integrated with a metal-organic framework (MOF) to construct a Schottky junction of Ru@MOF-808, which features a directed injection of hot interband electrons from Ru NPs to adsorbed substrates, and localized enrichment and activation of substrates around Ru catalytic centers, due to its high Schottky barrier, superior gas adsorption capacity, and excellent hydrogen spillover capability. Hot interband holes in Ru NPs can also be promptly quenched by enriched active H species, ensuring sustainable hot electron generation and producing abundant protons for CO methanation. Such catalyst design enables highly efficient utilization of hot interband carriers, and in turn, substantially accelerates the kinetically challenging CO methanation involving 8 electrons and 8 protons. Consequently, Ru@MOF-808 delivers a record-high apparent quantum yield of 17.16% under visible light and ambient conditions. The finding provides new insights into heterogeneous photocatalysis, and opens up a new avenue to efficient CO utilization.
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http://dx.doi.org/10.1002/smll.202504721 | DOI Listing |
Angew Chem Int Ed Engl
July 2025
Key Laboratory of Materials Physics and Anhui Key Laboratory of Nanomaterials and Nanotechnology, Institute of Solid State Physics, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei, 230031, P.R. China.
Interband and intraband electronic excitations in transition metals as nanocatalysts are crucial for the generation of hot carriers. Unlike the well-known Au, Ag and Cu nanoparticles (NPs), in which hot carriers are directly formed by absorption of visible light, Pt NPs still have limited hot carriers photogeneration ability. Nonetheless, Pt's unique d-band structure permits a high density of electronic states near Fermi energy.
View Article and Find Full Text PDFSmall
August 2025
MOE Laboratory of Bioinorganic and Synthetic Chemistry, GBRCE for Functional Molecular Engineering, Lehn Institute of Functional Materials, IGCME, School of Chemistry, Sun Yat-Sen University, Guangzhou, 510275, China.
Visible light-driven photocatalytic reduction of CO to value-added fuels and chemicals has attracted extensive interest for decades. However, the emerging photocatalysis paradigm through an interband transition in non-plasmonic metals remains challenging. Herein, a new strategy, namely hot carrier exploitation is demonstrated, for highly efficient CO reduction through the interband transition in non-plasmonic Ru nanoparticles (NPs).
View Article and Find Full Text PDFACS Nano
June 2025
Lumière, nanomatériaux, nanotechnologies (L2n), UMR CNRS 7076, Université de Technologie de Troyes, Troyes 10004, France.
Strong coupling typically occurs between two separate objects or between an object and its environment (such as an atom and a cavity). However, it can also occur between two different excitations within the same object, a situation that has been much less studied. In this study, we observe strong coupling between localized surface plasmon resonances and the interband transition in aluminum nanorods, as evidenced by optical spectroscopy and electron energy loss spectroscopy, and corroborated with numerical simulations.
View Article and Find Full Text PDFInt J Mol Sci
May 2025
School of Physics Science and Information Technology, Liaocheng University, Liaocheng 252000, China.
Two-dimensional (2D) n-MoS nanosheets (NSs) synthesized via the sol-gel method were deposited onto p-type heavily boron-doped diamond (BDD) film to form a n-MoS/p-degenerated BDD (DBDD) heterojunction device. The PL emission results for the heterojunction suggest strong potential for applications using yellow-light-emitting optoelectronic devices. From room temperature (RT) to 180 °C, the heterojunction exhibits typical rectification characteristics with good results for thermal stability, rectification ratio, forward current decrease, and reverse current increase.
View Article and Find Full Text PDFNanomaterials (Basel)
May 2025
School of Optoelectronic Engineering, Xidian University, Xi'an 710071, China.
Non-radiative decay of surface plasmon (SP) offers a novel paradigm for efficient conversion of photons into carriers. However, the narrow bandwidth of SP has been a significant obstacle to the widespread applications. Previously, research and applications mainly focused on noble metals such as Au, Ag, and Cu.
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