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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >New Core-Shell Nanocomposite Based on Co3O4 Quantum Dots and Fe-Infinite Coordination Polymer with Efficient Charge Separation Properties as Visible Light Photocatalyst and Photo-electrocatalyst
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New Core-Shell Nanocomposite Based on Co3O4 Quantum Dots and Fe-Infinite Coordination Polymer with Efficient Charge Separation Properties as Visible Light Photocatalyst and Photo-electrocatalyst

机译:基于CO3O4量子点和Fe-Infinite配位聚合物的新型核 - 壳纳米复合材料,具有有效电荷分离性能,如可见光光催化剂和光电催化剂

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摘要

A new core-shell nanocomposite was designed by functionalization of a Co3O4 quantum dots (Co3O4-QDs) core with terephthalic acid (TPA) and growth of an Fe-infinite coordination polymer (Fe-ICP) shell on the core surface. High-resolution transmission electron microscopy (HR-TEM) confirmed the core-shell structure of the prepared Co3O4-QDs@Fe-ICP nanocomposite. Co3O4-QDs@Fe-ICP exhibited high catalytic, visible light photocatalytic, and photoelectrocatalytic activity in degradation of rhodamine B (RhB), reactive orange 29 (RAO29), and crystal violet (CV) as compared to the individual Co3O4-QDs and Fe-ICP. The high photocatalytic, photoelectrocatalytic, and catalytic activities of Co3O4-QDs@Fe-ICP in comparison with Co3O4-QDs and Fe-ICP were attributed to the interconnection of Co3O4-QDs and Fe-ICP within the core-shell structure. Impressively, the existence of the Fe-ICP shell is critical for not only efficient charge separation and enhancing the catalytic performance but also preventing Co3O4-QDs from aggregation during the degradation process.
机译:通过具有对苯二甲酸(TPA)的CO3O4量子点(CO3O4-QDS)核的官能化和Fe-Infinite配位聚合物(Fe-ICP)壳的生长设计了一种新的核 - 壳纳米复合材料。高分辨率透射电子显微镜(HR-TEM)证实了制备的CO3O4-QDS / Fe-ICP纳米复合材料的核心壳结构。与个体CO3O4-QDS和FE相比,CO3O4-QDS @ Fe-ICP在罗丹明B(RHB),反应性橙29(RAO29)和晶体紫(CV)中的降解中的高催化,可见光光催化和光电催化活性。 -ICP。与CO3O4-QDS和Fe-ICP相比,Co3O4-QDS @ Fe-ICP的高光催化,光电催化和催化活性归因于CO3O4-QDS和FE-ICP在核心壳结构内的互连。令人印象深刻地,Fe-ICP壳的存在对于不仅有效的电荷分离和增强催化性能而且还可以在降解过程中预防CO3O4-QDS的影响至关重要。

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