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核壳结构对基于镧系元素纳米晶体性质的影响:晶相、晶格应变、下转换、上转换和能量转移。

Impacts of core-shell structures on properties of lanthanide-based nanocrystals: crystal phase, lattice strain, downconversion, upconversion and energy transfer.

机构信息

Department of Materials Science, Indian Association for the Cultivation of Science, Kolkata 700032, India.

出版信息

Nanoscale. 2012 Jun 21;4(12):3608-19. doi: 10.1039/c2nr30389b. Epub 2012 Apr 16.

DOI:10.1039/c2nr30389b
PMID:22504768
Abstract

This feature article highlights the new development and current status of rare-earth (RE) based core-shell nanocrystals, which is one of the new classes of hybrid nanostructures. Attractive properties of rare-earth based nanomaterials include extremely narrow emission bands, long lifetimes, large Stoke's shifts, photostability and absence of blinking that can be exploited for biophotonic and photonic applications. Core-shell nanostructures have been attracting a great deal of interest to improve the luminescence efficiency by the elimination of deleterious cross-relaxation. The main focus of this feature article is to address the impacts of core-shell structures on the properties of lanthanide based nanocrystals including crystal phase, lattice strain, downconversion emission, upconversion emission and energy transfer. We describe general synthetic methodologies to design core-shell nanostructure materials. An interesting finding reported is that the local environment of an ion in the core-shell structure significantly affects the modifications of radiative and nonradiative relaxation mechanisms. Finally, a tentative outlook on future developments of this research field is given. Here, we attempt to identify the critical parameters governing the design of luminescent lanthanide based core-shell nanostructures.

摘要

本文重点介绍了新型混合纳米结构之一的基于稀土(RE)的核壳纳米晶体的最新发展和现状。稀土纳米材料具有独特的性质,包括极其狭窄的发射带、长寿命、大斯托克斯位移、光稳定性和无闪烁,这些性质可用于生物光子学和光子学应用。核壳纳米结构由于可以消除有害的交叉弛豫现象,因此极大地提高了发光效率,引起了人们的极大兴趣。本文的主要重点是讨论核壳结构对基于镧系元素的纳米晶体的性质的影响,包括晶体相、晶格应变、下转换发射、上转换发射和能量转移。我们描述了设计核壳纳米结构材料的一般合成方法。本文报道的一个有趣发现是,离子在核壳结构中的局部环境显著影响辐射和非辐射弛豫机制的修饰。最后,对该研究领域的未来发展进行了展望。在这里,我们试图确定控制基于镧系元素的发光核壳纳米结构设计的关键参数。

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