4.8 Article

Modulating luminescence and assembled shapes of ultrasmall Au nanoparticles towards hierarchical information encryption

期刊

CHEMICAL SCIENCE
卷 13, 期 41, 页码 12107-12113

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2sc04031j

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资金

  1. National Key Research and Development Program of China [2021YFF1200100]
  2. National Natural Science Foundation of China [21907032, 81730051, 32071390]
  3. Shenzhen Science and Technology Program [KQTD20190929172743294]
  4. Shenzhen Key Laboratory of Smart Healthcare Engineering [ZDSYS20200811144003009]
  5. Guangdong Innovative and Entrepreneurial Research Team Program [2019ZT08Y191]
  6. Tencent Foundation through the XPLORER PRIZE

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This study presents a facile strategy for preparing Au nanoassemblies with controllable structures and tunable luminescence using Pluronic F127 as an adaptive template. The hierarchical information encryption was achieved by modulating excitation light, providing a novel pathway for creating uniform nanomaterials with desired functions for potential applications in information security.
Because of their intriguing luminescence performances, ultrasmall Au nanoparticles (AuNPs) and their assemblies hold great potential in diverse applications, including information security. However, modulating luminescence and assembled shapes of ultrasmall AuNPs to achieve a high-security level of stored information is an enduring and significant challenge. Herein, we report a facile strategy using Pluronic F127 as an adaptive template for preparing Au nanoassemblies (AuNAs) with controllable structures and tunable luminescence to realize hierarchical information encryption through modulating excitation light. The template guided ultrasmall AuNP in situ growth in the inner core and assembled these ultrasmall AuNPs into intriguing necklace-like or spherical nanoarchitectures. By regulating the type of ligand and reductant, their emission was also tunable, ranging from green to the second near-infrared (NIR-II) region. The excitation-dependent emission could be shifted from red to NIR-II, and this significant shift was considerably distinct from the small range variation of conventional nanomaterials in the visible region. In virtue of tunable luminescence and controllable structures, we expanded their potential utility to hierarchical information encryption, and the true information could be decrypted in a two-step sequential manner by regulating excitation light. These findings provided a novel pathway for creating uniform nanomaterials with desired functions for potential applications in information security.

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