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抑制阳离子混合极大地提升了核壳型镧系元素上转换纳米粒子的性能。

Suppression of Cation Intermixing Highly Boosts the Performance of Core-Shell Lanthanide Upconversion Nanoparticles.

作者信息

Huang Fuhua, Bagheri Niusha, Wang Li, Ågren Hans, Zhang Jinglai, Pu Rui, Zhan Qiuqiang, Jing Yuhan, Xu Wen, Widengren Jerker, Liu Haichun

机构信息

Department of Applied Physics, KTH Royal Institute of Technology, S-10691 Stockholm, Sweden.

College of Chemistry and Molecular Sciences, Henan University, Kaifeng, Henan 475004, P. R. China.

出版信息

J Am Chem Soc. 2023 Aug 16;145(32):17621-17631. doi: 10.1021/jacs.3c03019. Epub 2023 Aug 7.

Abstract

Lanthanide upconversion nanoparticles (UCNPs) have been extensively explored as biomarkers, energy transducers, and information carriers in wide-ranging applications in areas from healthcare and energy to information technology. In promoting the brightness and enriching the functionalities of UCNPs, core-shell structural engineering has been well-established as an important approach. Despite its importance, a strong limiting issue has been identified, namely, cation intermixing in the interfacial region of the synthesized core-shell nanoparticles. Currently, there still exists confusion regarding this destructive phenomenon and there is a lack of facile means to reach a delicate control of it. By means of a new set of experiments, we identify and provide in this work a comprehensive picture for the major physical mechanism of cation intermixing occurring in synthesis of core-shell UCNPs, i.e., partial or substantial core nanoparticle dissolution followed by epitaxial growth of the outer layer and ripening of the entire particle. Based on this picture, we provide an easy but effective approach to tackle this issue that enables us to produce UCNPs with highly boosted optical properties.

摘要

镧系元素上转换纳米粒子(UCNPs)作为生物标志物、能量转换器和信息载体,已在从医疗保健、能源到信息技术等广泛领域的众多应用中得到广泛探索。在提高UCNPs的亮度和丰富其功能方面,核壳结构工程已成为一种重要方法。尽管其很重要,但已发现一个严重的限制问题,即合成的核壳纳米粒子界面区域存在阳离子混合现象。目前,对于这种破坏性现象仍存在困惑,并且缺乏实现对其精确控制的简便方法。通过一组新的实验,我们在这项工作中识别并给出了核壳UCNPs合成过程中阳离子混合的主要物理机制的全面描述,即部分或大量的核心纳米粒子溶解,随后外层外延生长以及整个粒子的熟化。基于这一描述,我们提供了一种简单但有效的方法来解决这个问题,使我们能够制备出具有高度增强光学性质的UCNPs。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3110/10436270/3594591082f3/ja3c03019_0002.jpg

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