Enhanced photocatalytic HO production using BiOCl nanosheets decorated with Pd nanoparticles and polyethyleneimine

The photocatalytic conversion of endless solar energy into storable and usable chemical energy, such as photocatalytic hydrogen peroxide production, is promising and attractive. However, a satisfactory hydrogen peroxide yield has not been achieved using photocatalysts due to the rapid recombination...

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Veröffentlicht in:New journal of chemistry 2024-07, Vol.48 (26), p.11794-1181
Hauptverfasser: Du, Mingming, Peng, Anxian, Liu, Hongyue, Li, Qiyun, Dai, Likai, Fang, Zheng, Zeng, Ganning, Chen, Huimei, Yan, Rongjun
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Zusammenfassung:The photocatalytic conversion of endless solar energy into storable and usable chemical energy, such as photocatalytic hydrogen peroxide production, is promising and attractive. However, a satisfactory hydrogen peroxide yield has not been achieved using photocatalysts due to the rapid recombination of photoexcited carriers and the rapid decomposition of H 2 O 2 . Herein, a polymer polyethyleneimine (PEI)-assisted Pd metal loading BiOCl nanosheet photocatalyst (Pd/PEI/BOC) is designed to achieve higher photocatalytic activity. Experimental results show that compared to the Pd/BOC catalyst with a Pd loading of only 0.26 wt%, the Pd/PEI/BOC catalyst can achieve a higher Pd loading of 0.45 wt%, which is due to the obvious shifting of the isoelectric point (IEP) of BiOCl from the pH value of 4.1 to 8.4 in the presence of PEI, leading to enhanced immobilization. Furthermore, H 2 O 2 decomposed more slowly for the Pd/BOC catalyst modified by PEI. In addition, Pd can significantly enhance the separation of electrons-holes and light absorption range, especially for visible light. Therefore, under simulated sunlight, this Pd/PEI/BOC catalyst displayed a higher H 2 O 2 production ability of 3700.23 μmol g −1 h −1 . The proposed photocatalytic H 2 O 2 production mechanism of Pd/PEI/BOC, which shows an enhanced photocatalytic activity of 3700 μmol g −1 h −1 .
ISSN:1144-0546
1369-9261
DOI:10.1039/d4nj01834f