Advanced materials for optics and electronics2026,Vol.36Issue(26) :1-11.DOI:10.1002/adfm.202519444

Synergistic Plasmonic and Molecular Engineering of Carbon Nitride: Breaking Photocatalytic Trade-Offs for Efficient Noble-Metal-Free Solar CO_2 Reduction

Ming Cao Ying Zhang Hao Feng Maochang Liu Dong Liu Qiang Li
Advanced materials for optics and electronics2026,Vol.36Issue(26) :1-11.DOI:10.1002/adfm.202519444

Synergistic Plasmonic and Molecular Engineering of Carbon Nitride: Breaking Photocatalytic Trade-Offs for Efficient Noble-Metal-Free Solar CO_2 Reduction

Ming Cao 1Ying Zhang 1Hao Feng 1Maochang Liu 2Dong Liu 1Qiang Li1
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作者信息

  • 1. MIIT Key Laboratory of Thermal Control of Electronic Equipment School of Energy and Power Engineering Nanjing University of Science and Technology Nanjing 210094, China
  • 2. International ResearchCenter for Renewable Energy State Key Laboratory of Multiphase Flow in Power Engineering Xi'an JiaotongUniversity Xi'an710049, China
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Abstract

As a promising photocatalyst for CO_2 conversion, graphitic carbon nitride (CN) suffers from limited visible-light absorption and rapid charge recombination. Here, a noble-metal-free plasmonic system, comprising titanium nitride (TiN) nanoparticle-decorated between CN nanolayers, functionalized with 2,2′-bipyridine-4,4′-dicarboxylic groups (dcbpy) is introduced. The CN-dcbpy-TiN hybrid exhibits activated dcbpy-induced substates, plasmonic features, and thus broadband light absorption, accompanied by elevated energy levels at the TiN-CN plasmonic Ohmic interface. Through steady-state and time-resolved photoluminescence, as well as transient absorption spectroscopy, it is shown that the dual-functionalization of dcbpy terminals and plasmonic TiN efficiently suppresses the exciton recombination and promotes internal electron transfer to the dcbpy-associated shallow-trapping sites. Moreover, plasmonic TiN enables ultrafast electron transfer (<400 fs) and generates long-lived active electrons via energetic high-lying electrons and a nanoheating effect. The optimized CN-dcbpy-TiN15 demonstrates a notable CO production rate of 1180 μmol g~(-1) h~(-1) under visible-light irradiation (λ > 420 nm) and an apparent quantum yield of 2.53% at 420 nm. This work develops a novel mechanism of "noble-metal-free plasmon-induced defect-state electron enhancement" that successfully addresses the trade-off between light absorption and thermodynamics/kinetics, offering new insights to resolve the trilemma of traditional photocatalysts-simultaneously achieving broad-spectrum responsiveness, high carrier energy, and long-lived charge separation.

Key words

carbon nitride/CO_2 reduction/noble-metal-free photocatalysis/titanium nitride plasmon

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出版年

2026
Advanced materials for optics and electronics

Advanced materials for optics and electronics

ISSN:1616-301X
参考文献量53
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