» Articles » PMID: 32564596

Boosting Interfacial Charge-Transfer Kinetics for Efficient Overall CO Photoreduction Via Rational Design of Coordination Spheres on Metal-Organic Frameworks

Overview
Journal J Am Chem Soc
Specialty Chemistry
Date 2020 Jun 23
PMID 32564596
Citations 26
Authors
Affiliations
Soon will be listed here.
Abstract

The recombination of electron-hole pairs severely detracts from the efficiency of photocatalysts. This issue could be addressed in metal-organic frameworks (MOFs) through optimization of the charge-transfer kinetics via rational design of structures at atomic level. Herein, a pyrazolyl porphyrinic Ni-MOF (PCN-601), integrating light harvesters, active catalytic sites, and high surface areas, has been demonstrated as a superior and durable photocatalyst for visible-light-driven overall CO reduction with HO vapor at room temperature. Kinetic studies reveal that the robust coordination spheres of pyrazolyl groups and Ni-oxo clusters endow PCN-601 with proper energy band alignment and ultrafast ligand-to-node electron transfer. Consequently, the CO-to-CH production rate of PCN-601 far exceeds those of the analogous MOFs based on carboxylate porphyrin and the classic Pt/CdS photocatalyst by more than 3- and 20-fold, respectively. The reaction avoids the use of hole scavengers and proceeds in a gaseous phase which can take full advantage of the high gas uptake of MOFs. This work demonstrates that the rational design of coordination spheres in MOF structures not only reconciles the contradiction between reactivity and stability but also greatly promotes the interfacial charge transfer to achieve optimized kinetics, providing guidance for the design of highly efficient MOF photocatalysts.

Citing Articles

Donor-acceptor engineering of a triplet-exciton-optimized MOF photocatalyst for efficient singlet oxygen-mediated oxidation.

Wang K, Li C, Zhang G, Wang H, Geng L, Zhang B Natl Sci Rev. 2025; 12(4):nwaf024.

PMID: 40060922 PMC: 11887853. DOI: 10.1093/nsr/nwaf024.


Visible light mediated photocatalysis by lanthanide metal-organic frameworks: enhanced specificity and mechanistic insights.

Gupta R, Aashish , Upma , Majumdar S, Chowdhury P, Gupta R Chem Sci. 2024; .

PMID: 39464601 PMC: 11506566. DOI: 10.1039/d4sc04105d.


Artificial photosynthetic system for diluted CO reduction in gas-solid phase.

Wang Y, Wei J, Tang H, Shao L, Dong L, Chu X Nat Commun. 2024; 15(1):8818.

PMID: 39394216 PMC: 11470023. DOI: 10.1038/s41467-024-53066-y.


A Highly Conjugated Nickel(II)-Acetylide Framework for Efficient Photocatalytic Carbon Dioxide Reduction.

Qin Y, Wang Y, Lu J, Xu L, Wong W Angew Chem Int Ed Engl. 2024; 64(6):e202418269.

PMID: 39365610 PMC: 11795714. DOI: 10.1002/anie.202418269.


Exploring the Dynamics of Charge Transfer in Photocatalysis: Applications of Femtosecond Transient Absorption Spectroscopy.

Li N, Ma Y, Sun W Molecules. 2024; 29(17).

PMID: 39274845 PMC: 11396338. DOI: 10.3390/molecules29173995.