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首页> 外文期刊>Journal of Chemical Education >An Integrated, Multipart Experiment: Synthesis, Characterization, and Application of CdS and CdSe Quantum Dots as Sensitizers in Solar Cells
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An Integrated, Multipart Experiment: Synthesis, Characterization, and Application of CdS and CdSe Quantum Dots as Sensitizers in Solar Cells

机译:CDS和CDSE量子点作为太阳能电池中的敏化剂的合成,表征和应用的合成,表征和应用

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Quantum dots (QDs) are useful for demonstrating the particle-in-a-box (PIB) model utilized in quantum chemistry, and can readily be applied to a discussion of both thermodynamics and kinetics in an undergraduate laboratory setting. Modifications of existing synthetic procedures were used to create QDs of different sizes and compositions (CdS passivated with polymer, and CdSe passivated with oleic acid/trioctylphosphine). These were investigated by spectroscopy, to which standard 3D PIB mathematical models were applied to determine their effective size. The data were compared to those from other methods for students to see the validity of the PIB model. For CdSe QDs, an empirical formula was applied to the spectroscopic data. In the case of CdS, the synthesized QDs were studied with X-ray diffraction, from which one can also estimate the size of the QDs. Finally, the QDs were utilized as the light-harvesting layer in photovoltaic cells by attachment to a layer of surface-modified titania (TiO_(2)) nanoparticles on conductive glass, and the surface chemistry tested via water contact-angle measurements. The photoresponse of these cells was measured using basic electrochemistry equipment for a selection of QDs, and these results were considered in relation to the light source used for excitation (CdS QDs absorb UV light, and a voltage was only measurable upon exposure to UV light). Students are able to synthesize, characterize, and apply their materials to a functional purpose. Ultimately, students drafted reports in the form of an ACS-style communication, allowing for a tie-in of typical lab reports to real-world journal publications.
机译:量子点(QD)是用于表明在量子化学中使用的颗粒在一箱(PIB)模型是有用的,并且可以容易地在一个本科实验室设置被应用到热力学和动力学的讨论。的现有合成方法的修改被用于产生不同尺寸和组成的量子点(硫化镉钝化用聚合物,和CdSe钝化用油酸/三辛基膦)。这些由光谱,到标准的3D PIB的数学模型,用于确定其有效尺寸的影响。数据相比,这些其他方法,让学生看到PIB模型的有效性。对于量子点的CdSe,经验式施加到光谱数据。在硫化镉的情况下,所合成的量子点的患者进行X射线衍射,从其中一个也能够估计量子点的尺寸。最后,将量子点用作在光伏电池的捕光层通过附着到表面改性的二氧化钛的层(TiO_(2))上的导电玻璃纳米颗粒,并通过水接触角测量所测试的表面化学性。使用基本电化学设备的选择量子点的测定这些细胞的光响应,并且这些结果相对于用于激发光源被认为是硫化镉(CdS量子点吸收UV光,并且在暴露于UV光的电压为仅可测量) 。学生能合成,表征及其材料,适用于功能的目的。最终,学生们起草的报告在ACS式通信的形式,允许对搭配的典型实验报告真实世界期刊出版物。

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