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Influence of Shelling Temperature and Time on the Optical and Structural Properties of CuInS2/ZnS Quantum Dots.

机译:脱壳温度和时间对CuInS2 / ZnS量子点光学和结构性质的影响。

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摘要

CIS/ZnS core/shell QDs are an important class of nanomaterials for optoelectronic, photovoltaic and photoluminescence applications. They consist of lower toxicity materials than the prototypical II-VI Cd-based QDs and show long fluorescence lifetimes, which generates prospective in biological imaging applications. It is vital to develop reproducible synthetic methods for this new class of nanomaterials in order to maintain small sizes with high QYs. CIS core QDs have been shelled with ZnS at various temperatures from 90-210°C for reaction times ranging from 20-140 minutes to examine the role of thermodynamics and kinetics on the shell growth. Using HR-TEM and ICP-MS, it was observed that, rather than growing a ZnS shell onto the cores (as observed for II-VI QDs), ion-exchange occurs, leading to negligible size change at temperatures up to 210°C. Adding Zn via this ion-exchange mechanism leads to an increase in their QY, primarily by increasing the average radiative time through removing surface defects during the exchange process. The Zn concentration and QY is maintained if the shelling temperature is 210°C, but if the temperature is 190°C or lower, Zn is removed over 1-2 hours, although QY is maintained.;After a second injection of the ZnS shelling precursors, both the temperature and time of the reaction have a significant effect on the QY and structural properties. At 210°C, the second injection leads to a significant decrease in the QY, although the Zn concentration is maintained. On the other hand, if the temperature is 190°C or lower, the second injection does not lead to a decrease in the QY. In fact, with time, it can lead to an even higher QY than a single injection at 210°C, even though the Zn concentration drops to almost zero.;Recent reports of CIS/ZnS synthesis have varied within the 190-210°C range. The results in this thesis show that differences in the kinetics of the ion-exchange reactions, alloying between the core and shell, lattice self-purification of CIS and restructuring of the surface between 190°C and 210°C all play crucial roles, and may explain the differences reported in CIS/ZnS optical and structural properties in the literature.
机译:CIS / ZnS核/壳量子点是用于光电,光伏和光致发光应用的一类重要的纳米材料。它们由比典型的基于II-VI Cd的量子点低毒性的材料组成,并显示出长的荧光寿命,这在生物成像应用中具有前景。因此,对于这种新型的纳米材料,开发可重现的合成方法至关重要,以保持小尺寸和高QY。 CIS核心量子点已在90-210°C的各种温度下用ZnS脱壳,反应时间为20-140分钟,以检查热力学和动力学对壳生长的作用。使用HR-TEM和ICP-MS观察到,发生离子交换而不是在芯上生长ZnS壳(对于II-VI QD观察到),发生了离子交换,导致在高达210°C的温度下尺寸变化可忽略不计。通过这种离子交换机制添加Zn会增加QY,主要是通过在交换过程中去除表面缺陷来增加平均辐射时间。如果脱壳温度为210°C,则Zn的浓度和QY保持不变,但如果脱壳温度为190°C或更低,则在1-2小时内去除Zn,尽管保持QY .;第二次注入ZnS脱壳后前体,反应的温度和时间都对QY和结构性能产生重大影响。尽管保持了Zn的浓度,但在210°C时,第二次注入导致QY显着降低。另一方面,如果温度为190℃或更低,则第二次喷射不会导致QY降低。事实上,随着时间的流逝,即使Zn的浓度几乎降至零,与210°C的单次进样相比,QY也会更高。范围。本文的结果表明,在190°C至210°C之间,离子交换反应动力学,核与壳之间的合金化,CIS的晶格自纯化以及表面重构等方面的差异均起着至关重要的作用,并且可以解释文献中报道的CIS / ZnS光学和结构性质的差异。

著录项

  • 作者

    Robinson, Colette.;

  • 作者单位

    University of Arkansas.;

  • 授予单位 University of Arkansas.;
  • 学科 Physical chemistry.;Chemistry.;Materials science.
  • 学位 M.S.
  • 年度 2015
  • 页码 48 p.
  • 总页数 48
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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