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Significantly Boosted Upconversion Emission in Cryogenic Er@Yb@Y Core–Shell–Shell Nanostructures

  • Enhui Wang
  • , Wei Wang
  • , Lujun Niu
  • , Yansong Feng
  • , Haifeng Zhao
  • , Yongshi Luo
  • , Ligong Zhang
  • , Qiqing Li
  • , Haoran Chen
  • , Yulei Chang
  • , Langping Tu
  • , Hong Zhang
  • , Jing Zuo*
  • *此作品的通讯作者
  • Jilin University
  • CAS - Changchun Institute of Optics Fine Mechanics and Physics
  • University of Amsterdam

科研成果: 期刊稿件文章同行评审

摘要

Recent advances reveal that due to the cross-relaxation restriction, impressive upconversion (UC) enhancement (≈100-folds) can be achieved in cryogenic Er3+-rich core-inert shell nanostructures (e.g., NaErF4@NaYF4), which opens up exciting opportunities in diverse frontier applications. However, further promotion of UC intensity is still highly desired, in which the rational design of nanostructures can play a key role. Herein, it is demonstrated that adopting an active shell design will constantly benefit the UC within a wide temperature range (40–300 K). Specifically, through constructing the luminescent core@active shell@inert shell sandwich nanostructure (e.g., NaErF4@NaYbF4@NaYF4), 8.3–73-folds UC enhancement will be achieved (taking the corresponding core@inert shell structures as competitors). Moreover, from spectral-domain and time-domain spectroscopic experiments, the relevant UC enhancement is convincingly attributed to a temperature-dependent energy injection process (from the active shell to the luminescent core). More interestingly, the unique property of the material makes a temperature-induced high-level encryption application possible, which is obtained by employing the nanomaterials on a quick response (QR) code. These results not only deepen the UC mechanism in multi-layer nanostructures, but also introduce an expanded dimension (via low temperatures) in information security.

源语言英语
文章编号2301827
期刊Advanced Optical Materials
12
5
DOI
出版状态已出版 - 13 2月 2024

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