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Phase transfer of 1-and 2-dimensional Cd-based nanocrystals

机译:二维制作基于名符其实的相转移纳米晶体

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摘要

In this work, luminescent CdSe@CdS dot-in-rod nanocrystals, CdSe@CdS/ZnS nanorods as well as CdSe-CdS core-crown nanoplatelets were transferred into aqueous phase via ligand exchange reactions. For this purpose, bifunctional thiol-based ligands were employed, namely mercaptoacetic acid (MAA), 3-mercaptopropionic acid (MPA), 11-mercaptoundecanoic acid (MUA) as well as 2-(dimethylamino)ethanthiol (DMAET). Systematic investigations by means of photoluminescence quantum yield measurements as well as photoluminescence decay measurements have shown that the luminescence properties of the transferred nanostructures are affected by hole traps (induced by the thiol ligands themselves) as well as by spatial insulation and passivation against the environment. The influence of the tips of the nanorods on the luminescence is, however, insignificant. Accordingly, different ligands yield optimum results for different nanoparticle samples, mainly depending on the inorganic passivation of the respective samples. In case of CdSe@CdS nanorods, the highest emission intensities have been obtained by using short-chain ligands for the transfer preserving more than 50% of the pristine quantum yield of the hydrophobic nanorods. As opposed to this, the best possible quantum efficiency for the CdSe@CdS/ZnS nanorods has been achieved via MUA. The gained knowledge could be applied to transfer for the first time 2-dimensional CdSe-CdS core-crown nanoplatelets into water while preserving significant photoluminescence (up to 12% quantum efficiency).
机译:在这个工作中,发光CdSe@CdS dot-in-rod纳米晶体,CdSe@CdS /硫化锌纳米棒以及CdSe-CdS core-crown nanoplatelets是通过配体转移到水相交换反应。双官能thiol-based配体被雇佣,即巯基乙酸(MAA),3-mercaptopropionic酸(MPA),11-mercaptoundecanoic酸(邮件用户代理)- 2 - (dimethylamino) ethanthiol (DMAET)。调查通过光致发光量子产率测量以及光致发光衰减测量显示的发光特性将纳米结构受到孔的影响陷阱(硫醇配体本身引起的)以及空间绝缘和钝化对环境。技巧上的纳米发光,然而,微不足道。不同配体产生最佳的结果纳米颗粒样品,主要是根据无机钝化各自的样本。如果CdSe@CdS纳米棒,最高排放强度已获得通过短链配体转移保存超过50%的原始量子产量疏水纳米棒。最好的量子效率CdSe@CdS /硫化锌纳米棒已经通过邮件用户代理来实现。收获的知识可以应用于传输第一次二维CdSe-CdScore-crown nanoplatelets成水保护重要的光致发光(量子效率12%)。

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