Three-in-one: achieving a robust and effective hydrogen-evolving hybrid material by integrating polyoxometalate, a photo-responsive metal–organic framework, and in situ generated Pt nanoparticles

A Wells–Dawson-type polyoxometalate ([P 2 W 18 O 62 ] 6− , denoted as P2W18), a photo-responsive Zr-based metal–organic framework (MOF, NU-1000), and in situ generated Pt nanoparticles were successfully integrated into a three-in-one hybrid material (P2W18@NU-1000-Pt) using a facile impregnation and...

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Veröffentlicht in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2021-09, Vol.9 (35), p.19725-19733
Hauptverfasser: Jiao, Le, Dong, Yuanyuan, Xin, Xing, Wang, Ruijie, Lv, Hongjin
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Sprache:eng
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Zusammenfassung:A Wells–Dawson-type polyoxometalate ([P 2 W 18 O 62 ] 6− , denoted as P2W18), a photo-responsive Zr-based metal–organic framework (MOF, NU-1000), and in situ generated Pt nanoparticles were successfully integrated into a three-in-one hybrid material (P2W18@NU-1000-Pt) using a facile impregnation and subsequent photoreduction method. The resulting three-in-one hybrid material exhibits effective and robust activity towards photocatalytic hydrogen production in a water-compatible system under Xe-lamp irradiation, achieving a hydrogen production of 35 100 μmol g −1 and a turnover number (TON) of 5484 versus moles of Pt after 5 days of reaction. The post-catalysis three-in-one hybrid composite could be easily recycled at least 5 times without declining catalytic activity. Moreover, such a water-compatible photocatalytic system also reveals potential practical applications for catalyzing hydrogen production under natural sunlight irradiation. A possible photocatalytic mechanism was elucidated based on various photophysical and spectroscopic analyses, proving the importance of synergistic cooperation of the NU-1000 MOF, the P2W18 cluster, and in situ generated Pt NPs in such a three-in-one P2W18@NU-1000-Pt hybrid photocatalyst.
ISSN:2050-7488
2050-7496
DOI:10.1039/D1TA02792A