Light induced ammonia synthesis by crystalline polyoxometalate-based hybrid frameworks coupled with the Sv-1T MoS 2 cocatalyst

The exploration of efficient and stable composite-materials as nitrogen reduction photocatalysts featuring wide spectrum absorption and nitrogen fixation active sites has become specifically significant. In this work, a series of mixed-addendum PMoV-based organic–inorganic hybrid materials coupled w...

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Veröffentlicht in:Inorganic chemistry frontiers 2022-07, Vol.9 (15), p.3828-3838
Hauptverfasser: Li, Fengrui, Liu, Hongru, Chen, Weichao, Su, Ying, Chen, Weilin, Zhi, Jingjing, Li, Yangguang
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Sprache:eng
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Zusammenfassung:The exploration of efficient and stable composite-materials as nitrogen reduction photocatalysts featuring wide spectrum absorption and nitrogen fixation active sites has become specifically significant. In this work, a series of mixed-addendum PMoV-based organic–inorganic hybrid materials coupled with rich sulfur vacancy 1T MoS 2 (Sv-1T MoS 2 ) through a hydrothermal growth strategy are presented towards green NH 3 production. The intervalence electron transfer of the reduced polyoxometalates, as well as the construction of a Ni-trinuclear cluster-based framework, is responsible for the capable light-harvesting performance of the well-defined PMo 8 V 6 –Ni crystalline material, and Sv-1T MoS 2 which serves as a cocatalyst can facilitate electron–hole separation of the light absorbers, which further promotes the ammonia production capacity of the composite materials. As expected, the ammonia generation rate of Sv-1T MoS 2 /PMo 8 V 6 –Ni (80.6 μmol h −1 g −1 ) is much higher than that of either PMo 8 V 6 –Ni (9.7 μmol h −1 g −1 ) or Sv-1T MoS 2 (8.6 μmol h −1 g −1 ) component. Such a noble-metal-free system therefore shows an apparent quantum efficiency (AQE) of 0.368% at 550 nm. The “working-in-tandem” mechanism established by sulfur vacancies as nitrogen active sites and polyoxometalate crystalline photosensitizers are extremely crucial for facilitating N 2 chemisorption and NH 3 formation. This work provides a fresh perspective for the rational design of photocatalyst composite materials with energetic electrons towards efficient nitrogen fixation.
ISSN:2052-1553
2052-1553
DOI:10.1039/D2QI01003H