New polar plasticizers for luminescence-based sensors Peru

  • New polar plasticizers for luminescence-based sensors Peru
  • New polar plasticizers for luminescence-based sensors Peru
  • New polar plasticizers for luminescence-based sensors Peru
  • What is circularly polarized luminescence (CPL)?
  • Circularly polarized luminescence (CPL) materials have attracted tremendous attention for their potential applications in many fields 1, 2, 3, 4, 5, such as molecular sensors 6, 7, 8, information encryption 9, 10, and optical storage 11, 12, 13.
  • What is 0d/2d heterostructure polarized luminescent nanocomposite?
  • The work introduces the concept of 0D/2D heterostructure polarized luminescent nanocomposite materials and marks a milestone in the field of polarized luminescence. The challenge of achieving efficient and polarized luminescence based on a 0D nanomaterial has been overcome ingeniously and expands the family of polarized luminescent materials.
  • Why is polarized luminescence important for Information encryption?
  • Fluorescence is an important factor for information encryption and can act as a metaphorical skin for information. Circularly polarized luminescence (CPL) can afford one more dimension of information (i.e., the state of polarization) than common fluorescence and is of great potential in the field of information encryption 14, 15, 16, 17.
  • What is tunable circularly polarized luminescence with a high dissymmetry factor?
  • Li, Z. Z. et al. Tunable circularly polarized luminescence with a high dissymmetry factor emitted from luminogen-bonded and electrically controlled polymer-stabilized cholesteric liquid crystals. ACS Appl. Mater. Interfaces14, 8490–8498 (2022).
  • What is a photoswitchable circularly polarized luminescent cholesteric superstructure?
  • A photoswitchable circularly polarized luminescent cholesteric superstructure: direct visualization and dynamic modulation of the amplified luminescence dissymmetry factor. J. Mater. Chem. C 10, 7311–7318 (2022).
  • How can optical polarization states be controlled at ultra-low fields?
  • The collaboration has successfully achieved precise control of optical polarization states at ultra-low fields, significantly increasing the sensitivity of liquid crystal molecules in response to a magnetic stimulus by almost three orders of magnitude.

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