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Iron(iii)-bipyridine incorporated metal–organic frameworks for photocatalytic reduction of CO2 with improved performance
Author(s) -
Yuan-Ping Wei,
Sizhuo Yang,
Peng Wang,
Jin-Han Guo,
Jier Huang,
WeiYin Sun
Publication year - 2020
Publication title -
dalton transactions
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.98
H-Index - 184
eISSN - 1477-9234
pISSN - 1477-9226
DOI - 10.1039/d0dt03500a
Subject(s) - photocatalysis , reduction (mathematics) , metal organic framework , bipyridine , materials science , metal , chemistry , inorganic chemistry , chemical engineering , catalysis , organic chemistry , crystal structure , metallurgy , adsorption , geometry , mathematics , engineering
Metal-organic frameworks (MOFs) represent an emerging class of platforms to assemble single site photocatalysts for artificial photosynthesis. In this work, we report a new CO 2 reduction photocatalyst (UiO-68-Fe-bpy) based on a robust Zr(iv)-MOF platform with incorporated Fe(bpy)Cl 3 (bpy refers to the 4'-methyl-[2,2'-bipyridine] moiety) via amine-aldehyde condensation. We show that this hybrid catalyst can reduce CO 2 o form CO under visible light illumination with excellent selectivity and enhanced activity with respect to its parent MOF and corresponding homogeneous counterpart. Using steady state and transient absorption (TA) spectroscopy, we show that the enhanced photocatalytic activity of UiO-68-Fe-bpy is attributed to the elongated excited state lifetime of Fe(bpy)Cl 3 after being incorporated to the UiO-68-NH 2 platform. This work demonstrates the great potential of MOFs as a next generation platform for solar fuel conversion.

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