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低温诱导的NaLnF纳米晶体可控横向壳层生长

Low-Temperature-Induced Controllable Transversal Shell Growth of NaLnF Nanocrystals.

作者信息

Liu Deming, Jin Yan, Dong Xiaotong, Liu Lei, Jin Dayong, Capobianco John A, Shen Dezhen

机构信息

State Key Laboratory of Luminescence and Applications, Changchun Institute of Optics Fine Mechanics and Physics Chinese Academy of Sciences, Changchun 130033, China.

Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Nanomaterials (Basel). 2021 Mar 8;11(3):654. doi: 10.3390/nano11030654.

Abstract

Highly controllable anisotropic shell growth is essential for further engineering the function and properties of lanthanide-doped luminescence nanocrystals, especially in some of the advanced applications such as multi-mode bioimaging, security coding and three-dimensional (3D) display. However, the understanding of the transversal shell growth mechanism is still limited today, because the shell growth direction is impacted by multiple complex factors, such as the anisotropy of surface ligand-binding energy, anisotropic core-shell lattice mismatch, the size of cores and varied shell crystalline stability. Herein, we report a highly controlled transversal shell growth method for hexagonal sodium rare-earth tetrafluoride (β-NaLnF) nanocrystals. Exploiting the relationship between reaction temperature and shell growth direction, we found that the shell growth direction could be tuned from longitudinal to transversal by decreasing the reaction temperature from 310 °C to 280 °C. In addition to the reaction temperature, we also discussed the roles of other factors in the transversal shell growth of nanocrystals. A suitable core size and a relative lower shell precursor concentration could promote transversal shell growth, although different shell hosts played a minor role in changing the shell growth direction.

摘要

高度可控的各向异性壳层生长对于进一步设计镧系元素掺杂发光纳米晶体的功能和性质至关重要,特别是在一些先进应用中,如多模态生物成像、安全编码和三维(3D)显示。然而,目前对横向壳层生长机制的理解仍然有限,因为壳层生长方向受到多种复杂因素的影响,如表面配体结合能的各向异性、核壳晶格失配的各向异性、核的尺寸以及壳层晶体稳定性的变化。在此,我们报道了一种用于六方晶系稀土四氟酸钠(β-NaLnF)纳米晶体的高度可控横向壳层生长方法。利用反应温度与壳层生长方向之间的关系,我们发现通过将反应温度从310℃降至280℃,壳层生长方向可以从纵向调整为横向。除了反应温度,我们还讨论了其他因素在纳米晶体横向壳层生长中的作用。合适的核尺寸和相对较低的壳层前驱体浓度可以促进横向壳层生长,尽管不同的壳层主体在改变壳层生长方向方面作用较小。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6dbd/7999601/b789e0db27aa/nanomaterials-11-00654-g001.jpg

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