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Po-Chang, Wu
Guan-Wei, Wu
Ivan V. Timofeev
Victor Ya. Zyryanov
Wei, Lee
2020-01-20T08:01:30Z
2020-01-20T08:01:30Z
2018-11
Po-Chang, Wu. Electro-thermally tunable reflective colors in a self-organized cholesteric helical superstructure [Текст] / Wu Po-Chang, Wu Guan-Wei, Ivan V. Timofeev, Victor Ya. Zyryanov, Lee Wei // Photonics Research. — 2018. — Т. 6 (№ 12). — С. 1094-1100
23279125
https://www.osapublishing.org/prj/fulltext.cfm?uri=prj-6-12-1094&id=401029###
https://elib.sfu-kras.ru/handle/2311/129560
We propose to dynamically control the reflective color of a cholesteric liquid crystal (CLC) by electrically tuning the center wavelength (𝜆c) of the bandgap. The CLC, sandwiched in a planar-aligned cell with indium–tin-oxide electrodes, possesses negative dielectric anisotropy and thermo-responsive spectral properties. The helix in the Grandjean planar state, which is subject to vertically applied voltage, should be undisturbed in that the long molecular axis is initially perpendicular to the direction of the electric field. Surprisingly, when the frequency of the applied voltage is higher than a critical value, 𝜆c of the CLC cell varies as a function of the voltage. The underlying mechanism is the voltage-induced temperature change through dielectric heating in the frequency regime of pseudo-dielectric relaxation, attributable to the significant equivalent resistance–capacitance circuit of the cell due to the use of electrode layers with finite conductance. The driving voltage enabling the tuning of 𝜆c in the entire visible spectrum is as low as 12  Vrms in a 5 μm thick cell at a frequency of 2 MHz. The proposed CLC cell, exhibiting a broad electrically tunable spectral range from the near-infrared to ultraviolet, holds great promise for developing tunable photonic devices such as multicolor reflectors, filters, and sensors.
Electro-thermally tunable reflective colors in a self-organized cholesteric helical superstructure
Journal Article
Journal Article Preprint
1094-1100
29.31.27
2020-01-20T08:01:30Z
10.1364/PRJ.6.001094
Институт инженерной физики и радиоэлектроники
Кафедра теоретической физики и волновых явлений
Photonics Research
Q1
Q1


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