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Circularly Polarized Mechanoluminescence for Force-Insensitive Optical Information Decryption

  • Xiaolin Nie
  • , Chunfeng Wang*
  • , Xinye Lu
  • , Gaofeng Lai
  • , Zugang Li
  • , Dengfeng Peng
  • , Weidong Chen
  • , Deliang Zhu*
  • , Caofeng Pan*
  • *Corresponding author for this work
  • Shenzhen University
  • Beihang University

Research output: Contribution to journalArticlepeer-review

Abstract

Stimuli-responsive materials that exhibit circularly polarized luminescence (CPL) have attracted significant attention for applications in chiroptical sensing and information security. However, the development of CPL platforms remains limited owing to the challenges in chirality control, reliance on photoexcitation, and complexity of the decoding mechanisms. In this paper, a force-insensitive chiroptical platform is presented, constructed by integrating a mechanoluminescent phosphor layer with a photonic crystal layer. The phosphor layer enables both photoluminescence (PL) and mechanoluminescence (ML) emissions, whereas the photonic crystal layer enables tunable photonic bandgaps, achieved by adjusting the cellulose nanocrystal-to-glucose ratio. This structural design enables modulated CPL with high dissymmetry factors (glum), reaching −0.512 and −0.573 for gPL and gML, respectively. Further, the system shows distinct solvent-responsive circularly polarized mechanoluminescence (CPML) behavior. Moreover, its force-insensitive response offers a robust and light-free strategy for information decryption, significantly enhancing security while simplifying operation. These findings highlight the potential of the CPML platform for next-generation chiroptical sensing and secure information technologies.

Original languageEnglish
Article numbere26708
JournalAdvanced Functional Materials
Volume36
Issue number29
DOIs
StatePublished - 9 Apr 2026

Keywords

  • circularly polarized luminescence
  • information security
  • mechanoluminescence
  • smart sensors
  • stimuli-responsive materials

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