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MoS_2 quantum dots embedded in g-C_3N_4 frameworks: A hybrid 0D-2D heterojunction as an efficient visible-light driven photocatalyst

机译:嵌入g-C_3N_4框架中的MoS_2量子点:杂化0D-2D异质结作为有效的可见光驱动光催化剂

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Zero-dimensional (OD) quantum dots (QDs)/two-dimensional (2D) nanosheets heterojunctions have attracted significant attention due to their high charge mobility and effective charge carrier separation. Herein, a novel MoS2 QDs/graphitic carbon nitride (MoS2 QDs/g-C3N4) heterojunction composite with multiple unique advantages over the traditional MoS2 nanoparticles/g-C3N4 composites has been prepared by a facile polymerization method. The obtained MoS2 QDs/g-C3N4 composite exhibits superior visible-light-driven photocatalytic performance toward the photodegradation of organic pollutants and possesses a different catalytic degradation mechanism compared with the pure g-C3N4. The radical species trapping experiments and ESR measurements indicate that the (OH)-O-center dot radical is one of the major active species generated by the MoS2 QDs/g-C3N4 composite, whereas the (OH)-O-center dot radical only plays a minor role in the photodegradation processes catalyzed by pure g-C3N4. A type-II staggered band alignment is observed in the MoS2 QDs/g-C3N4 composite, which accounts for its efficient separation of photo-induced charge carriers and formation of (OH)-O-center dot radicals. The superior visible-lightdriven photocatalytic performance could be attributed to the strong coupling and band alignment between the MoS2 QDs and g-C3N4 nanosheets, leading to an enhanced efficiency for the generation and separation of the photo-induced charge carriers. This study provides new insights into the design and fabrication of novel g-C3N4 based hybrid photocatalysts with reasonable electronic structures for photochemical reactions.
机译:零维(OD)量子点(QD)/二维(2D)纳米片异质结由于其高电荷迁移率和有效的电荷载流子分离而备受关注。在此,通过简便的聚合方法制备了一种新型的MoS2 QDs /石墨碳氮化物(MoS2 QDs / g-C3N4)异质结复合材料,具有优于传统MoS2纳米颗粒/ g-C3N4复合材料的多个独特优势。所得的MoS2 QDs / g-C3N4复合材料对有机污染物的光降解表现出优异的可见光驱动光催化性能,并且与纯g-C3N4相比具有不同的催化降解机理。自由基种类的捕获实验和ESR测量表明(OH)-O-中心点自由基是MoS2 QDs / g-C3N4复合物产生的主要活性物质之一,而(OH)-O-中心点自由基仅在纯g-C3N4催化的光降解过程中起次要作用。在MoS2 QDs / g-C3N4复合材料中观察到II型交错带取向,这说明其有效分离了光诱导的电荷载流子并形成了(OH)-O-中心点自由基。优异的可见光驱动的光催化性能可归因于MoS2 QD和g-C3N4纳米片之间的强耦合和能带排列,从而提高了光诱导载流子的产生和分离效率。这项研究为新型的基于g-C3N4的杂化光催化剂的设计和制造提供了新见解,该杂化光催化剂具有适用于光化学反应的合理电子结构。

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