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Superstructures of chiral nematic microspheres as all-optical switchable distributors of light

  • Sarah J. Aßhoff
  • , Sertan Sukas
  • , Tadatsugu Yamaguchi
  • , Catharina A. Hommersom
  • , Séverine Le Gac
  • , Nathalie Katsonis

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

Light technology is based on generating, detecting and controlling the wavelength, polarization and direction of light. Emerging applications range from electronics and telecommunication to health, defence and security. In particular, data transmission and communication technologies are currently asking for increasingly complex and fast devices, and therefore there is a growing interest in materials that can be used to transmit light and also to control the distribution of light in space and time. Here, we design chiral nematic microspheres whose shape enables them to reflect light of different wavelengths and handedness in all directions. Assembled in organized hexagonal superstructures, these microspheres of well-defined sizes communicate optically with high selectivity for the colour and chirality of light. Importantly, when the microspheres are doped with photo-responsive molecular switches, their chiroptical communication can be tuned, both gradually in wavelength and reversibly in polarization. Since the kinetics of the "on" and "off" switching can be adjusted by molecular engineering of the dopants and because the photonic cross-communication is selective with respect to the chirality of the incoming light, these photo-responsive microspheres show potential for chiroptical all-optical distributors and switches, in which wavelength, chirality and direction of the reflected light can be controlled independently and reversibly.

Original languageEnglish
Article number14183
Number of pages10
JournalScientific Reports
Volume5
DOIs
Publication statusPublished - 24 Sept 2015
Externally publishedYes

Bibliographical note

Funding Information:
This work was supported financially by the Netherlands Organization for Scientific Research (NWO-Vidi grant 700.10.423), the European Research Council (Starting Grant 307784) and the Dutch Foundation for Fundamental Research on Matter (FOM Projectruimte Grant 13PR3105). S.L.G. acknowledges financial support from MESA+ via the Strategic Research Orientation “Nanotechnology for Innovative Medicine”.

Publisher Copyright:
© 2015 Macmillan Publishers Limited. All rights reserved.

Funding

This work was supported financially by the Netherlands Organization for Scientific Research (NWO-Vidi grant 700.10.423), the European Research Council (Starting Grant 307784) and the Dutch Foundation for Fundamental Research on Matter (FOM Projectruimte Grant 13PR3105). S.L.G. acknowledges financial support from MESA+ via the Strategic Research Orientation “Nanotechnology for Innovative Medicine”.

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