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通过镧系掺杂实现上转换纳米晶体的同时相和尺寸控制。

Simultaneous phase and size control of upconversion nanocrystals through lanthanide doping.

机构信息

Department of Chemistry, National University of Singapore, 117543, Singapore.

出版信息

Nature. 2010 Feb 25;463(7284):1061-5. doi: 10.1038/nature08777.

Abstract

Doping is a widely applied technological process in materials science that involves incorporating atoms or ions of appropriate elements into host lattices to yield hybrid materials with desirable properties and functions. For nanocrystalline materials, doping is of fundamental importance in stabilizing a specific crystallographic phase, modifying electronic properties, modulating magnetism as well as tuning emission properties. Here we describe a material system in which doping influences the growth process to give simultaneous control over the crystallographic phase, size and optical emission properties of the resulting nanocrystals. We show that NaYF(4) nanocrystals can be rationally tuned in size (down to ten nanometres), phase (cubic or hexagonal) and upconversion emission colour (green to blue) through use of trivalent lanthanide dopant ions introduced at precisely defined concentrations. We use first-principles calculations to confirm that the influence of lanthanide doping on crystal phase and size arises from a strong dependence on the size and dipole polarizability of the substitutional dopant ion. Our results suggest that the doping-induced structural and size transition, demonstrated here in NaYF(4) upconversion nanocrystals, could be extended to other lanthanide-doped nanocrystal systems for applications ranging from luminescent biological labels to volumetric three-dimensional displays.

摘要

掺杂是材料科学中广泛应用的一种技术过程,它涉及将适当元素的原子或离子掺入宿主晶格中,以产生具有理想性质和功能的混合材料。对于纳米晶体材料,掺杂对于稳定特定的结晶相、修饰电子性质、调节磁性以及调整发射性质具有根本重要性。在这里,我们描述了一个材料体系,其中掺杂影响生长过程,从而可以同时控制所得纳米晶体的结晶相、尺寸和光发射性质。我们表明,通过在精确定义的浓度下使用三价镧系掺杂离子,可以合理地调节 NaYF(4)纳米晶体的尺寸(小至十纳米)、相(立方或六方)和上转换发射颜色(从绿色到蓝色)。我们使用第一性原理计算来证实镧系掺杂对晶体相和尺寸的影响源于对取代掺杂离子的大小和偶极极化率的强烈依赖性。我们的结果表明,这里在 NaYF(4)上转换纳米晶体中证明的掺杂诱导的结构和尺寸转变,可以扩展到其他镧系掺杂纳米晶体系统,用于从发光生物标记到体三维显示的各种应用。

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