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A-Novel-CdS-Nanorod with Stacking Fault Structures: Preparation and Properties of Visible-Light-Driven Photocatalytic Hydrogen Production from Water Splitting

机译:具有堆叠故障结构的A-新型-CDS-NANOROD:从水分裂的可见光光催化氢气产生的制备和性能

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In the present study, CdS nanorod particles with the stacking fault structures were hydrothermally synthesized through a dissolution-recrystallization approach in concentrated ammonia solvent, for the first time. It was clear that concentrated ammonia solution contained a large number of hydroxyl ions and large numbers of ammonia. Comprehensive characteristics were performed to investigate the influence of stacking fault structures on the photocatalytic activity and stability of CdS nanorod particles. Transmission electron microscopy (TEM) images revealed that the CdS catalyst included many nanorods with stacking fault structures. Stacking fault structures were obviously observed within CdS nanorods with the length ranging from 70 to 200 nm and diameter ranging from 20 to 65 nm, respectively. It revealed that the formation of CdS nanorod particles with stacking faults was contributed to the dissolution-recrystallization process. There were many structural units for cubic phase changing to hexagonal phase in the CdS crystals in the process of hydrothermal resulting in forming a large number of stacking fault structures. Photo-generated electrons and holes migrating directionally along the nanorods direction and the stacking fault structures in some nanorods could promote the separation of photo-generated electrons and holes, which enhanced the activity of visible-light-driven photocatalytic hydrogen production. Through the photocatalytic hydrogen production experiments, CdS nanorod particles with the stacking fault structures showed much higher photocatalytic activity than CdS patticles prepared by the conventional hydrothermal method using the water as the hydrothermal solvent.
机译:在本研究中,首次通过浓缩氨溶剂中的溶解 - 再结晶方法水热合成具有堆叠故障结构的CDS纳米棒颗粒。很明显,浓缩氨溶液含有大量的羟基离子和大量氨。进行综合特性以研究堆垛性故障结构对CDS纳米棒颗粒光催化活性及稳定性的影响。透射电子显微镜(TEM)图像显示CDS催化剂包括具有堆叠故障结构的许多纳米棒。在CDS纳米棒中显然观察到堆叠故障结构,其长度范围为70至200nm,直径分别为20至65nm。揭示了CDS纳米棒与堆叠故障的形成有助于溶解 - 再结晶过程。在水热的过程中,在CDS晶体中变化到六边形相的结构单元,导致形成大量堆叠故障结构。光生成的电子和孔沿纳米棒方向迁移和一些纳米棒中的堆叠故障结构可以促进光产生的电子和孔的分离,这增强了可见光的光催化氢气产生的活性。通过光催化氢生产实验,CDS纳米棒颗粒具有堆叠故障结构的光催化活性比通过使用水作为水热溶剂的常规水热法制备的CDS鼠案更高。

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