Construction of Ag NPs/CQDs/(La0.2Ce0.2Gd0.2Zr0.2Fe0.05)O2 high-entropy oxide heterostructures: Synergistic enhancement for photocatalytic degradation performance

High-entropy oxides (HEOs) are promising photocatalysts because of their compositional flexibility, defect-rich structures, and high structural stability. However, inefficient visible-light utilization and rapid charge-carrier recombination limit their photocatalytic performance. This study aimed to enhance the photocatalytic activity of fluorite-structured (La 0.2 Ce 0.2 Gd 0.2 Zr 0.2 Fe 0.05 )O 2 by constructing a ternary heterostructure comprising silver nanoparticles (Ag NPs), carbon quantum dots (CQDs), and HEO. The HEO was prepared by a sol–gel method, modified with CQDs, and subsequently decorated with Ag NPs by in situ photodeposition. The optimized ACH-2 composite removed 89.73% of tetracycline hydrochloride (TCH) within 120 min under visible-light irradiation and exhibited an apparent rate constant of 0.0176 min −1 , compared with 0.0072 min −1 for pristine HEO. The enhanced activity was accompanied by a broader optical response, lower interfacial charge-transfer resistance, a higher photocurrent response, and weaker steady-state photoluminescence. CQDs contributed to light utilization and interfacial charge transfer, whereas the Ag/HEO contact promoted directional electron migration and inhibited electron–hole recombination. Reactive-species experiments identified •O− 2 and h + as the predominant species involved in TCH degradation. The composite also maintained useful activity during repeated operation. These results demonstrate that cooperative CQD/Ag surface modification is an effective strategy for regulating light harvesting and interfacial charge transfer in HEO photocatalysts.

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Publication Details

Journal
Journal of Water Process Engineering
Published
2026-09-11
DOI
https://doi.org/10.1016/j.jwpe.2026.110841
Primary Topic
Advancements in Solid Oxide Fuel Cells
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article
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Construction of Ag NPs/CQDs/(La0.2Ce0.2Gd0.2Zr0.2Fe0.05)O2 high-entropy oxide heterostructures: Synergistic enhancement for photocatalytic degradation performance

Dongjie Jia, Linjie Song, Tonglin Chigan, Hu Wenhui et al.
Journal of Water Process Engineering
Advancements in Solid Oxide Fuel Cells
article

Construction of Ag NPs/CQDs/(La0.2Ce0.2Gd0.2Zr0.2Fe0.05)O2 high-entropy oxide heterostructures: Synergistic enhancement for photocatalytic degradation performance

Dongjie Jia, Linjie Song, Tonglin Chigan, Hu Wenhui, Jingfang Ma, Xianyu Li, Peipei Yang
article en

Abstract

High-entropy oxides (HEOs) are promising photocatalysts because of their compositional flexibility, defect-rich structures, and high structural stability. However, inefficient visible-light utilization and rapid charge-carrier recombination limit their photocatalytic performance. This study aimed to enhance the photocatalytic activity of fluorite-structured (La 0.2 Ce 0.2 Gd 0.2 Zr 0.2 Fe 0.05 )O 2 by constructing a ternary heterostructure comprising silver nanoparticles (Ag NPs), carbon quantum dots (CQDs), and HEO. The HEO was prepared by a sol–gel method, modified with CQDs, and subsequently decorated with Ag NPs by in situ photodeposition. The optimized ACH-2 composite removed 89.73% of tetracycline hydrochloride (TCH) within 120 min under visible-light irradiation and exhibited an apparent rate constant of 0.0176 min −1 , compared with 0.0072 min −1 for pristine HEO. The enhanced activity was accompanied by a broader optical response, lower interfacial charge-transfer resistance, a higher photocurrent response, and weaker steady-state photoluminescence. CQDs contributed to light utilization and interfacial charge transfer, whereas the Ag/HEO contact promoted directional electron migration and inhibited electron–hole recombination. Reactive-species experiments identified •O− 2 and h + as the predominant species involved in TCH degradation. The composite also maintained useful activity during repeated operation. These results demonstrate that cooperative CQD/Ag surface modification is an effective strategy for regulating light harvesting and interfacial charge transfer in HEO photocatalysts.

Journal of Water Process EngineeringVol. 93
Openalex Percentile: Top 24%
Advancements in Solid Oxide Fuel Cells
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