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Highly Efficient Photocatalytic Hydrogen Production of Flower-like Cadmium Sulfide Decorated by Histidine

机译:组氨酸修饰花状硫化镉的高效光催化制氢

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摘要

Morphology-controlled synthesis of CdS can significantly enhance the efficiency of its photocatalytic hydrogen production. In this study, a novel three-dimensional (3D) flower-like CdS is synthesized via a facile template-free hydrothermal process using Cd(NO3)2•4H2O and thiourea as precursors and L-Histidine as a chelating agent. The morphology, crystal phase, and photoelectrochemical performance of the flower-like CdS and pure CdS nanocrystals are carefully investigated via various characterizations. Superior photocatalytic activity relative to that of pure CdS is observed on the flower-like CdS photocatalyst under visible light irradiation, which is nearly 13 times of pure CdS. On the basis of the results from SEM studies and our analysis, a growth mechanism of flower-like CdS is proposed by capturing the shape evolution. The imidazole ring of L-Histidine captures the Cd ions from the solution, and prevents the growth of the CdS nanoparticles. Furthermore, the photocatalytic contrast experiments illustrate that the as-synthesized flower-like CdS with L-Histidine is more stable than CdS without L-Histidine in the hydrogen generation.
机译:CdS的形态学控制合成可以显着提高其光催化制氢的效率。在这项研究中,使用Cd(NO3)2•4H2O和硫脲作为前体,L-组氨酸作为螯合剂,通过简便的无模板水热工艺合成了新颖的三维(3D)花状CdS。花状CdS和纯CdS纳米晶体的形貌,晶相和光电化学性能通过各种表征进行了仔细研究。在可见光照射下,在花状CdS光催化剂上观察到相对于纯CdS优良的光催化活性,是纯CdS的近13倍。根据扫描电镜研究的结果和我们的分析,通过捕获形状演变,提出了花状CdS的生长机理。 L-组氨酸的咪唑环从溶液中捕获Cd离子,并阻止CdS纳米颗粒的生长。此外,光催化对比实验表明,合成的具有L-组氨酸的花状CdS比没有L-组氨酸的CdS更稳定。

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