Synthesis of a highly active core–shell Ni-MOF@CdS S-scheme heterojunction for enhanced photoreduction of CO 2 to CO

One of the attractive applications of metal–organic frameworks (MOFs) is the photocatalytic transformation of CO 2 into clean fuels or high value chemicals due to their high CO 2 adsorption capacity. However, the fast recombination process of electrons and holes in MOFs has limited their activity. H...

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Veröffentlicht in:New journal of chemistry 2023-08, Vol.47 (33), p.15534-15542
Hauptverfasser: Ali, Rai Nauman, Qureshi, Waqar Ahmad, Naz, Hina, Jiang, Haopeng, Yaseen, Maria, Yu, Xiaohui, Liu, Qinqin
Format: Artikel
Sprache:eng
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Zusammenfassung:One of the attractive applications of metal–organic frameworks (MOFs) is the photocatalytic transformation of CO 2 into clean fuels or high value chemicals due to their high CO 2 adsorption capacity. However, the fast recombination process of electrons and holes in MOFs has limited their activity. Herein, a novel core–shell Ni-MOF@CdS S-scheme heterojunction was designed and fabricated to improve the carrier separation for achieving a high CO 2 reduction activity. Among the prepared photocatalysts, the optimum Ni-MOF@CdS 30% sample demonstrated the highest yield of CO (24.1 μmol g −1 ), which was almost 3 and 2.5 times higher than those of bare CdS and Ni-MOF samples. This improvement of photoreduction of CO 2 to CO might be related to the synergistic effect of the core–shell structure and the S-scheme carrier transfer mode, which improved the charge separation efficiency, retained strong reduction capacity, and provided abundant active sites for the selective photoreduction process. Our work provides a new strategy to design future MOF based nanocomposites for the efficient photoreduction of CO 2 .
ISSN:1144-0546
1369-9261
DOI:10.1039/D3NJ02143B