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Manipulating energy transfer in lanthanide-doped single nanoparticles for highly enhanced upconverting luminescence

机译:操纵镧系元素掺杂的单个纳米粒子中的能量转移以高度增强上转换发光

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摘要

Energy transfer (ET) is of fundamental importance in tuning the optical performance of lanthanide-doped upconversion nanoparticles (UCNPs). However, the fine control and manipulation of the ETs particularly for deleterious cross-relaxation type ETs (CR-ETs) in lanthanide-doped UCNPs remains a formidable challenge to date. Herein, we demonstrate a rational design strategy to manipulate the deleterious CR-ETs in lanthanide-doped UCNPs, by fine-tuning the distances at an extremely large length scale (>20 nm) among multiple lanthanide dopants that are simultaneously embedded into one single nanoparticle with specially designed multilayer nanostructures. The successful inhibition of the CR-ETs leads to a significantly enhanced upconversion luminescence signal with an intensity ∼70 times higher than that of co-doped conventional UCNPs. This finding paves a new way for the better control of the ETs in lanthanide-doped nanoparticles, and offers the possibility of constructing a series of promising single-nanocrystal-based anti-counterfeiting barcodes with well-identified UC emission color and lifetime outputs.
机译:能量转移(ET)在调整镧系元素掺杂的上转换纳米粒子(UCNPs)的光学性能中至关重要。然而,迄今为止,对掺杂镧系元素的UCNPs中的有害交叉松弛型ETs(CR-ETs)的ETs进行精细控制和操纵仍然是一个艰巨的挑战。本文中,我们演示了一种合理的设计策略,可通过微调同时嵌入一个纳米粒子中的多种镧系元素掺杂剂之间的极长的长度尺度(> 20 nm)来操纵掺杂镧系元素的UCNP中的有害CR-ET。具有专门设计的多层纳米结构。对CR-ET的成功抑制导致上转换发光信号显着增强,其强度比共掺杂的常规UCNP高约70倍。该发现为更好地控制掺杂镧系元素的纳米粒子中的ETs开辟了一条新途径,并为构建一系列具有良好识别的UC发射颜色和使用寿命输出的基于单纳米晶体的防伪条形码提供了可能性。

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