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无镉的 InP 和 InPZn/ZnS 量子点在溶液中的合成与降解。

Synthesis and Degradation of Cadmium-Free InP and InPZn/ZnS Quantum Dots in Solution.

机构信息

Department of Chemistry and Biochemistry , University of Maryland Baltimore County , Baltimore , Maryland 21250 , United States.

Department of Chemistry , Johns Hopkins University , Baltimore , Maryland 21218 , United States.

出版信息

Langmuir. 2018 Nov 20;34(46):13924-13934. doi: 10.1021/acs.langmuir.8b02402. Epub 2018 Nov 6.

DOI:10.1021/acs.langmuir.8b02402
PMID:30351964
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6402331/
Abstract

This study advances the chemical research community toward the goal of replacing toxic cadmium-containing quantum dots (QDs) with environmentally benign InP QDs. The InP QD synthesis uniquely combines the previously reported use of InP magic-sized clusters (MSCs) as a single-source precursor for indium and phosphorus to form InP QDs, with zinc incorporation and subsequent ZnS shelling, to form InPZn/ZnS QDs with luminescence properties comparable to those of commonly used cadmium-containing luminescent QDs. The resulting InPZn/ZnS QDs have an emission quantum yield of about 50% across a broad range of emission peak wavelengths and emission peaks averaging 50 nm fwhm. The emission peak wavelength can be easily tuned by varying the Zn/In ratio in the reaction mixture. The strategy of using zinc stearate to tune the emission properties is advantageous as it does not lead to a loss of emission quantum yield or emission peak broadening. Although the initial optical properties of InP and InPZn/ZnS QDs are promising, thermal stability measurements of InPZn QDs show significant degradation in the absence of a shell compared to the CdSe QDs particularly at increased temperature in the presence of oxygen, which is indicative of thermal oxidation. There is no significant difference in the degradation rate of InP QDs made from molecular precursors and from MSCs. Additionally, the emission intensity and quantum yield of InPZn/ZnS QDs when purified and diluted in organic solvents under ambient conditions decrease significantly compared to those of CdSe/ZnS QDs. This indicates instability of the ZnS shell when prepared by common literature methods. This must be improved to realize high-quality, robust Cd-free QDs with the capability of replacing CdSe QDs in QD technologies.

摘要

这项研究推动了化学研究界朝着用环保的磷化铟量子点(InP QD)替代含毒镉量子点(QD)的目标前进。InP QD 的合成独特地结合了先前报道的使用磷化铟魔术尺寸簇(MSC)作为铟和磷的单源前体来形成 InP QD,以及锌的掺入和随后的 ZnS 壳层,形成发光性能与常用含镉发光 QD 相当的 InPZn/ZnS QD。所得到的 InPZn/ZnS QD 在宽发射峰波长范围内具有约 50%的发射量子产率,发射峰平均为 50nm fwhm。通过改变反应混合物中的 Zn/In 比,可以轻松地调谐发射峰波长。使用硬脂酸锌来调谐发射性质的策略是有利的,因为它不会导致发射量子产率或发射峰展宽的损失。尽管 InP 和 InPZn/ZnS QD 的初始光学性质很有前景,但 InPZn QD 的热稳定性测量表明,与 CdSe QD 相比,在没有壳层的情况下,特别是在存在氧气的情况下,在较高温度下会发生显著降解,这表明存在热氧化。由分子前体和 MSC 制成的 InP QD 的降解速率没有明显差异。此外,当在环境条件下在有机溶剂中纯化和稀释时,InPZn/ZnS QD 的发射强度和量子产率与 CdSe/ZnS QD 相比显著降低。这表明当用常见文献方法制备时,ZnS 壳不稳定。为了实现具有替代 CdSe QD 的能力的高质量、稳健的无镉 QD,必须对此进行改进。

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