Titanium metal-organic frameworks (Ti-MOFs), as an appealing type of artificial photocatalyst, have shown great potential in the field of solar energy conversion due to their well-studied photoredox activity (similar to TiO ) and good optical responsiveness of linkers, which serve as the antenna to absorb visible-light. Although much effort has been dedicated to developing Ti-MOFs with high photocatalytic activity, their solar energy conversion performances are still poor. Herein, we have implemented a covalent-integration strategy to construct a series of multivariate Ti-MOF/COF hybrid materials PdTCPP⊂PCN-415(NH )/TpPa (composites 1, 2, and 3), featuring excellent visible-light utilization, a suitable band gap, and high surface area for photocatalytic H production. Notably, the resulting composites demonstrated remarkably enhanced visible-light-driven photocatalytic H evolution performance, especially for the composite 2 with a maximum H evolution rate of 13.98 mmol g h (turnover frequency (TOF)=227 h ), which is much higher than that of PdTCPP⊂PCN-415(NH ) (0.21 mmol g h ) and TpPa (6.51 mmol g h ). Our work thereby suggests a new approach to highly efficient photocatalysts for H evolution and beyond.
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http://dx.doi.org/10.1002/anie.202114071 | DOI Listing |
Angew Chem Int Ed Engl
January 2022
Department of Chemistry, University of North Texas, 1508 W Mulberry St, Denton, TX, 76201, USA.
Titanium metal-organic frameworks (Ti-MOFs), as an appealing type of artificial photocatalyst, have shown great potential in the field of solar energy conversion due to their well-studied photoredox activity (similar to TiO ) and good optical responsiveness of linkers, which serve as the antenna to absorb visible-light. Although much effort has been dedicated to developing Ti-MOFs with high photocatalytic activity, their solar energy conversion performances are still poor. Herein, we have implemented a covalent-integration strategy to construct a series of multivariate Ti-MOF/COF hybrid materials PdTCPP⊂PCN-415(NH )/TpPa (composites 1, 2, and 3), featuring excellent visible-light utilization, a suitable band gap, and high surface area for photocatalytic H production.
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